US20020047268A1 - Rotating electrical machine plants - Google Patents
Rotating electrical machine plants Download PDFInfo
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- US20020047268A1 US20020047268A1 US08/952,990 US95299098A US2002047268A1 US 20020047268 A1 US20020047268 A1 US 20020047268A1 US 95299098 A US95299098 A US 95299098A US 2002047268 A1 US2002047268 A1 US 2002047268A1
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- winding
- voltage single
- rotating high
- winding machine
- voltage
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J3/00—Circuit arrangements for ac mains or ac distribution networks
- H02J3/36—Arrangements for transfer of electric power between ac networks via a high-tension dc link
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K15/00—Methods or apparatus specially adapted for manufacturing, assembling, maintaining or repairing of dynamo-electric machines
- H02K15/12—Impregnating, heating or drying of windings, stators, rotors or machines
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01F—MAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
- H01F27/00—Details of transformers or inductances, in general
- H01F27/28—Coils; Windings; Conductive connections
- H01F27/288—Shielding
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01F—MAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
- H01F27/00—Details of transformers or inductances, in general
- H01F27/28—Coils; Windings; Conductive connections
- H01F27/32—Insulating of coils, windings, or parts thereof
- H01F27/323—Insulation between winding turns, between winding layers
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01F—MAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
- H01F27/00—Details of transformers or inductances, in general
- H01F27/34—Special means for preventing or reducing unwanted electric or magnetic effects, e.g. no-load losses, reactive currents, harmonics, oscillations, leakage fields
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01F—MAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
- H01F29/00—Variable transformers or inductances not covered by group H01F21/00
- H01F29/14—Variable transformers or inductances not covered by group H01F21/00 with variable magnetic bias
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01F—MAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
- H01F3/00—Cores, Yokes, or armatures
- H01F3/10—Composite arrangements of magnetic circuits
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01F—MAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
- H01F3/00—Cores, Yokes, or armatures
- H01F3/10—Composite arrangements of magnetic circuits
- H01F3/14—Constrictions; Gaps, e.g. air-gaps
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02H—EMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
- H02H3/00—Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal electric working condition with or without subsequent reconnection ; integrated protection
- H02H3/02—Details
- H02H3/025—Disconnection after limiting, e.g. when limiting is not sufficient or for facilitating disconnection
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K15/00—Methods or apparatus specially adapted for manufacturing, assembling, maintaining or repairing of dynamo-electric machines
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K3/00—Details of windings
- H02K3/04—Windings characterised by the conductor shape, form or construction, e.g. with bar conductors
- H02K3/12—Windings characterised by the conductor shape, form or construction, e.g. with bar conductors arranged in slots
- H02K3/14—Windings characterised by the conductor shape, form or construction, e.g. with bar conductors arranged in slots with transposed conductors, e.g. twisted conductors
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K3/00—Details of windings
- H02K3/04—Windings characterised by the conductor shape, form or construction, e.g. with bar conductors
- H02K3/28—Layout of windings or of connections between windings
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K3/00—Details of windings
- H02K3/32—Windings characterised by the shape, form or construction of the insulation
- H02K3/40—Windings characterised by the shape, form or construction of the insulation for high voltage, e.g. affording protection against corona discharges
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K3/00—Details of windings
- H02K3/46—Fastening of windings on the stator or rotor structure
- H02K3/48—Fastening of windings on the stator or rotor structure in slots
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01F—MAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
- H01F27/00—Details of transformers or inductances, in general
- H01F27/28—Coils; Windings; Conductive connections
- H01F27/32—Insulating of coils, windings, or parts thereof
- H01F2027/329—Insulation with semiconducting layer, e.g. to reduce corona effect
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01F—MAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
- H01F29/00—Variable transformers or inductances not covered by group H01F21/00
- H01F29/14—Variable transformers or inductances not covered by group H01F21/00 with variable magnetic bias
- H01F2029/143—Variable transformers or inductances not covered by group H01F21/00 with variable magnetic bias with control winding for generating magnetic bias
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K2203/00—Specific aspects not provided for in the other groups of this subclass relating to the windings
- H02K2203/15—Machines characterised by cable windings, e.g. high-voltage cables, ribbon cables
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K9/00—Arrangements for cooling or ventilating
- H02K9/19—Arrangements for cooling or ventilating for machines with closed casing and closed-circuit cooling using a liquid cooling medium, e.g. oil
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S174/00—Electricity: conductors and insulators
- Y10S174/13—High voltage cable, e.g. above 10kv, corona prevention
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S174/00—Electricity: conductors and insulators
- Y10S174/13—High voltage cable, e.g. above 10kv, corona prevention
- Y10S174/14—High voltage cable, e.g. above 10kv, corona prevention having a particular cable application, e.g. winding
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S174/00—Electricity: conductors and insulators
- Y10S174/13—High voltage cable, e.g. above 10kv, corona prevention
- Y10S174/14—High voltage cable, e.g. above 10kv, corona prevention having a particular cable application, e.g. winding
- Y10S174/19—High voltage cable, e.g. above 10kv, corona prevention having a particular cable application, e.g. winding in a dynamo-electric machine
- Y10S174/20—Stator
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S174/00—Electricity: conductors and insulators
- Y10S174/13—High voltage cable, e.g. above 10kv, corona prevention
- Y10S174/14—High voltage cable, e.g. above 10kv, corona prevention having a particular cable application, e.g. winding
- Y10S174/24—High voltage cable, e.g. above 10kv, corona prevention having a particular cable application, e.g. winding in an inductive device, e.g. reactor, electromagnet
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S174/00—Electricity: conductors and insulators
- Y10S174/13—High voltage cable, e.g. above 10kv, corona prevention
- Y10S174/14—High voltage cable, e.g. above 10kv, corona prevention having a particular cable application, e.g. winding
- Y10S174/24—High voltage cable, e.g. above 10kv, corona prevention having a particular cable application, e.g. winding in an inductive device, e.g. reactor, electromagnet
- Y10S174/25—Transformer
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S174/00—Electricity: conductors and insulators
- Y10S174/13—High voltage cable, e.g. above 10kv, corona prevention
- Y10S174/26—High voltage cable, e.g. above 10kv, corona prevention having a plural-layer insulation system
Definitions
- the present invention relates to installations for transformerless generation of HVDC (high-voltage direct current) and wherein the installation comprises a rotating high-voltage single-winding or multiple-winding machine and a converter.
- the invention also comprises devices for high-voltage electric machine operation with a variable speed. In practice, this means that the installations convert a mechanical torque into direct current and direct voltage without intermediate transformers, and that the installations convert direct current and direct voltage into mechanical torque without intermediate transformers.
- the single-winding or multiple-winding machine comprises a magnetic circuit with one or more cores of laminated, normal or oriented, sheet or other, for example amorphous or powder-based, material, or any other action for the purpose of allowing an alternating flux, one or more winding systems, cooling systems, etc., which may be disposed in the stator or the rotor of the machine, or in both.
- the single-winding or multiple-winding machine may also be made as an air-gas-wound machine Without magnetic material or with magnetic material only in the back portion.
- the invention also comprises methods for manufacturing magnetic circuits for a rotating high-voltage single-winding/multiple-winding machine.
- devices according to the invention are primarily intended to be part of installations for transformerless generation of high-voltage direct current and for high-voltage electric machine drives. Installations where the invention will be used normally lie within the power range of 1 MW to 15 GW and comprise one or several rotating machines.
- AC and AC corresponds to ac conversion/ac conversion with an arbitrary ratio between the frequency, amplitude, phase position and phase number of the voltages
- DC and DC corresponds to dc conversion/dc conversion.
- thyristors diodes, triacs, gate turn-off thyristors (GTO), bipolar transistors (BJT) , PWM transistors, MOSFET, insulated gate bipolar transistors (IGBT), static induction transistors (SIT), static induction thyristors (SITH), MOS-controlled thyristors (MCT), etc.
- a conventional HVDC transmitter station is clear from FIG. 1.
- it comprises a number of ac generators G 1 - - - Gn which, according to the state of the art, have a voltage of 25-30 kV.
- the generator voltage Via transformers A 1 - - - An, preferably D/Y-connected, the generator voltage is stepped up to a suitable ac transmission level and is transmitted over shorter of longer distances via ac transmission lines in a high-voltage ac network.
- the predominant method for rectification is then to use so-called 12-pulse rectification.
- the sine shape in the ac network is secured with ac filters near the converters.
- the 12-pulse rectification assumes that consecutively series-connected converter bridges B 1 - - - Bn are fed from ac systems which are displaced 30 electrical degrees relative to each other. This is achieved by connecting to the high-voltage ac network Y/Y-connected converter transformers Y 1 - - - Yn and corresponding Y/D-connected converter transformers D 1 - - - Dn, which are allowed to feed the converters.
- Such a conventional HVDC transmitter station thus comprises two transformer stages, ac filters, ac circuit breakers and an ac busbar system. Because the transformers are normally intended for transmission of high powers, they are normally oil-cooled and oil-insulated. Because of the series-connected converters, the windings and the bushings of the converter transformers will be subjected to a rising dc potential, counting from ground. It places very heavy demands on the insulation and the bushings of these transformers. This is describes, inter alia, in “Power Transmission by Direct Current” by E. Uhlmann, Springer Verlag 1975, pp. 327-328, in ELECTRA No. 141, April 1992, pp. 34-39, and in ELECTRA No. 155, August 1994, pp. 6-30.
- an HVDC transmitter station which comprises direct connection from each generator to the Y/Y-connected and the Y/D-connected converter transformers.
- Such an installation is described, inter alia, in the above-mentioned article in ELECTRA and is here referred to as a “direct connection”.
- converter harmonics may give increased losses in the stator windings of the generators.
- the “HVDC converter” referred to in the above-mentioned article in ELECTRA Nol 149 for direct connection to the generators comprise the two Y/Y-connected and Y/D-connected converter transformers, respectively, and the converters.
- FIG. 3 There is a special interphase transformer converter connection, which is shown in FIG. 3.
- the supply of the converters S 1 and S 2 takes place by means of two three-phase voltages, displaced by 30 electrical degrees relative to each other, via the transformers T 1 and L 2 .
- the connection otherwise comprises the reactors R 1 and R 2 , no dc potential stress arises on the feeding transformers or generators.
- R 1 and R 2 are often designed with a common core and winding as well as a centre tap.
- a device according to the invention comprises a single-winding/multiple-winding machine.
- a multiple-winding machine according to the state of the art is described in U.S. Pat. No. 4,132,914 entitled “Six-phase winding of electric machine stator”.
- the windings are here especially formed to obtain as low voltages as possible between the external connections.
- the six-phase windings in this and similar machines are formed as two three-phase windings which are normally electrically displaced relative to each other by 30 electrical degrees. This permits a possibility of subsequently achieving one single three-phase voltage with the aid of a Y-connected and a D-connected transformer.
- the above-mentioned machine and similar machines according to the state of the art are designed for voltages of up to about 25 kV.
- Machines with two three-phase windings, electrically displaced relative to each other by 30 electrical degrees, may be used according to the above, without intermediate transformers, for 12-pulse rectification with converters.
- the rectified voltage may amount to a maximum of about 30 kV, symmetrically distributed as about +/ ⁇ 15 kV around ground potential.
- a rotating high-voltage single-winding/multiple-winding machine included in an installation according to the invention is able to operate as a variable-speed motor fed via semiconductor connections from a high-voltage dc network and as a generator to generate an ac network via semiconductor connections and transformers.
- Electric machine drives with variable speed for ac machines assumes, for various practical reasons, that the machine is provided with two three-phase windings displaced relative to each other by 30 electrical degrees. For the speed control, the machines then have to be supplied with a variable frequency.
- the voltage level of the supply according to the state of the art is of the order of magnitude of 5 kV.
- the supply of such motor drives may take place in different ways, for example as a pure AC/AC power conversion or from a direct-voltage network via controllable converters.
- the construction of such an installation is described, inter alia, in an article entitled “Synchronous machines with single or double 3-phase star-connected winding fed by 12-pulse load commutated inverter”, published in ICEM 94, International Conference on Electrical Machines, Part Vol. 1, pp. 267-272.
- Electric machine drives with a variable speed may also be achieved with machines with a winding system if the supply takes place while utilizing the latest technical development, so-called PMW technique, that is, with pulse-width modulation and self-commutated converters, in which case also a six-pulse connection may be used.
- PMW technique that is, with pulse-width modulation and self-commutated converters, in which case also a six-pulse connection may be used.
- reluctance machines are currently designed for up to a few hundred kilowatts, wherein both the stator and the rotor are provided with salient poles.
- motors are described, inter alia, in “Variable speed switched reluctance motors” in IEE Proc. B, Vol. 127, November 1980, pp. 253-265.
- the machines are currently low-voltage machines and the windings surround the salient poles of the stator in many layers.
- These reluctance machines are examples of machines which may be further developed for connection via converters to high dc voltage.
- the present invention comprises a rotating high-voltage single-winding/multiple-winding machine intended for voltage levels significantly exceeding those which apply to machines according to the state of the art. This also entails great possibilities for electric machine drives with variable speed at considerably higher voltage levels and the advantages this brings with regard to machine power etc.
- the single-winding/multiple-winding machine according to the invention relates to a machine which is capable of generating a voltage system or several voltage systems, phase-shifted in space, with a corresponding winding system.
- the composition of the rotating high-voltage single-winding/multiple-winding machine according to the invention is independent of whether the machine is made as a single-winding machine or whether it is made as a multiple-winding machine and whether it is used for HVDC generation or for high-voltage variable-speed motor drives.
- stator slots The state of the art will therefore be described starting from a conventional single-winding machine with a voltage level of about 25-30 kV exemplified on the basis of a synchronous machine.
- the description substantially relates to the magnetic circuit of such a machine and how this is composed according to classic technique. Since the magnetic circuit referred to in most cases is disposed in the stator, the magnetic circuit below will normally be described as a stator with a laminated core, the winding of which will be referred to as a stator winding, and the slots in the laminated core for the winding will be referred to as stator slots or simply slots.
- synchronous machines have a field winding in the rotor, where the main flux is generated by direct current, and an ac winding in the stator.
- the synchronous machines are normally of three-phase design.
- the synchronous machines are designed with salient poles. The latter have an ac winding in the rotor.
- the machines are designed with polyphase windings both in the stator and in the rotor as so-called synchronous flux machines to allow operation at other than synchronous speeds.
- the stator body for large synchronous machines is often made of sheet steel with a welded construction.
- the laminated core is normally made from varnished 0.35 or 0.5 mm electric sheet.
- the sheet is punched into segments which are attached to the stator body by means of wedges/dovetails.
- the laminated core is retained by pressure fingers and pressure plates.
- both the stator winding and the rotor winding are cooled by cooling air flowing through.
- the cooling air channels are to be found both in the stator laminations and in the rotor.
- the laminated core at least for medium-sized and large machines is divided into stacks with both radial and axial ventilation ducts disposed in the core.
- the cooling air may consist of ambient air but at powers exceeding 1 MW, a closed cooling system with heat exchangers is substantially used. Air is the substantial medium for hydrogenerators.
- Hydrogen cooling is normally used in turbogenerators up to about 400 MW and in large synchronous condensers.
- the cooling method functions in the same way as in air cooling with heat exchangers, but instead of air as coolant there is used hydrogen gas.
- the hydrogen gas has better cooling capacity than air, but difficulties arise at seals and in monitoring leakage.
- the cooling channels are in the form of tubes which are placed inside conductors in the stator winding.
- the stator winding is disposed in slots in the laminated core.
- the slots normally have a cross section as that of a rectangle or a trapezoid.
- Each winding phase comprises a number of series-connected coil groups and each coil group comprises a number of series-connected coils.
- the different parts of the coil are designated coil side for that part which is placed in the stator and coil end for that part which is disposed outside the stator.
- a coil comprises one or more conductors brought together in height and/or width. Between each conductor there is a thin insulation, for example epoxy/glass fibre.
- the coil is insulated against the slot with a coil insulation, that is, an insulation intended to withstand the rated voltage of the machine to ground.
- mica tape is used, which is a mixture of mica and hard plastic, especially produced to provide resistance to partial discharges, which can rapidly break down the insulation.
- the insulation is applied to the coil by winding the mica tape around the coil in several layers. The insulation is impregnated, and then the coil side is painted with a coal-based paint to improve the contact with the surrounding stator which is connected to ground potential.
- the conductor area of the windings is determined by the relevant current intensity and by the cooling method used.
- the conductor and the coil are usually formed with a rectangular shape to maximize the amount of conductor material in the slot.
- a typical coil is formed of so-called Roebel bars, in which certain of the bars may be made hollow for a coolant.
- a Roebel bar comprises a plurality of rectangular, parallel-connected copper conductors, which are transposed 360 degrees along the slot. Ringland bars with transpositions of 540 degrees and other transpositions also occur. The transposition is made to avoid the occurrence of circulating currents which are generated in a cross section of the conductor material, as viewed from the magnetic field.
- the conductor area of the windings At normal operating temperature, copper, for example, has a maximum value of 3-3.5 A/mm 2 .
- Polyphase ac windings are designed either as single-layer or two-layer windings. In the case of single-layer windings, there is only one coil side per slot, and in the case of two-layer windings there are two coil sides per slot. Two-layer windings are usually designed as diamond windings, whereas the single-layer windings which are relevant in this connection may be designed as a diamond winding or as a concentric winding. In the case of a diamond winding, only one coil span (or possibly two coil spans) occurs, whereas flat windings are designed as concentric windings, that is, with a greatly varying coil width.
- coil width is meant the distance in circular measure between two coil sides belonging to the same coil, either in relation to the relevant pole pitch or in the number of intermediate slot pitches.
- chording usually, different variants of chording are used, for example fractional pitch, to give the winding the desired properties.
- the type of winding substantially describes how the coils in the slots, that is, the coil sides, are connected together outside the stator, that is, at the coil ends.
- the coil is not provided with a painted semiconducting ground-potential layer of carbon-based paint.
- the coil end is normally provided with an E-field control in the form of so-called corona protection varnish intended to convert a radial field into an axial field, which means that the insulation on the coil ends occurs at a high potential relative to ground. This sometimes gives rise to corona in the coil-end region, which may be destructive.
- the so-called field-controlling points at the coil ends entail problems in the design of a rotating electric machine.
- the water- and oil-cooled synchronous machine described in J. Elektrotechnika is intended for voltages up to 20 kV.
- the article describes a new insulation system consisting of oil/paper insulation, which makes it possible to immerse the stator completely in oil. The oil can then be used as a coolant while a the same time using it as insulation.
- a dielectric oil-separating ring is provided at the internal surface of the core.
- the stator winding is made from conductors with an oval hollow shape provided with oil and paper insulation. The coil sides with their insulation are secured to the slots made with rectangular cross section by means of wedges.
- coolant oil is used both in the hollow conductors and in holes in the stator walls.
- Such cooling systems entail a large number of connections of both oil and electricity at the coil ends.
- the thick insulation also entails an increased radius of curvature of the conductors, which in turn results in an increased size of the winding overhang.
- U.S. Pat. No. 4,429,244 relates to the stator part of a synchronous machine which comprises a magnetic core of laminated sheet with trapezoidal slots for the stator winding.
- the slots are tapered since the need of insulation of the stator winding is smaller towards the interior of the rotor where that part of the winding which is located nearest the neutral point is disposed.
- the stator part comprises a dielectric oil-separating cylinder nearest the inner surface of the core. This part may increase the magnetization requirement relative to a machine without this ring.
- the stator winding is made of oil-immersed cables with the same diameter for each coil layer. The layers are separated from each other by means of spacers in the slots and secured by wedges.
- the winding comprises two so-called half-windings connected in series.
- One of the two half-windings is disposed, centered, inside an insulating sleeve.
- the conductors of the stator winding are cooled by surrounding oil.
- Disadvantages with such a large quantity of oil in the system are the risk of leakage and the considerable amount of cleaning work which may result from a fault condition.
- Those parts of the insulating sleeve which are located outside the slots have a cylindrical part and a conical termination reinforced with current-carrying layers, the duty of which is to control the electric field strength in the region where the cable enters the end winding.
- the oil-cooled stator winding comprises a conventional high-voltage cable with the sene dimension for all the layers.
- the cable is placed in stator slots formed as circular, radially disposed openings corresponding to the cross-section area of the cable and the necessary space for fixing and for coolant.
- the different radially disposed layers of the winding are surrounded by and fixed in insulating tubes. Insulating spacers fix the tubes in the stator slot.
- an internal dielectric ring is also needed here for sealing the oil coolant against the internal air gap.
- the disadvantages of oil in the system described above also apply to this design.
- the design also exhibits a very narrows radial waist between the different stator slots, which means a large slot leakage flux which significantly influences the magnetization requirement of the machine.
- the winding is manufactured with conductors and insulation systems in several steps, whereby the winding must be preformed prior to mounting on the magnetic circuit. Impregnation for preparing the insulation system is preformed after mounting of the winding on the magnetic circuit.
- One object of the invention is to provide installations for transformerless generation of HVDC and that the installation includes a rotating single-winding/multiple-winding machine with such a high voltage that the transformer stages shown in FIGS. 1 and 2, with step-up transformation of the generator voltage first to ac transmission high voltage and tne Y/Y-connected and Y/D-connected transformers, respectively, for achieving 12-pulse rectification with converters, can be eliminated.
- the machine is intended, inter alia, to directly supply the converters with the high voltage which is needed for achieving an HVDC network.
- Direct connection described in ELECTRA should be noted. It is another object of the invention to provide installations for high-voltage variable-speed electric machine drives.
- the above two objects mean that the installations convert a mechanical torque, via converters, to direct current and direct voltage without intermediate transformers, and that the installations convert direct current and direct voltage, via converters, to a mechanical torque without intermediate transformers.
- the converters may also comprise one or more of the semiconductor devices which are mentioned under the “Background Art”.
- a rotating high-voltage single-winding/multiple-winding machine as an integral part of the present invention entails a considerably reduced thermal stress on the stator. Temporary overloads of the machine thus become less critical and it sell be possible to drive the machine at overload for a longer period of time without running the risk of damage arising. This means considerable advantages for owners of power generating plants who are forced today, in case of operational disturbances, to rapidly switch to other equipment in order to ensure the delivery requirements laid down by regulations.
- the magnetic circuit of the rotating high-voltage single-winding/multiple-winding machine comprises one or more windings, phase-shifted in space, of a threaded or wound cable with one or more solid insulated conductors with a semiconducting layer both at the conductor and the casing and, between the two semiconducting layers, a layer with a solid insulation.
- the outer semiconducting layer may be connected to ground potential.
- the present invention is based on the realization that, to be able to increase the power of a rotating electric machine in a technically and economically justifiable way, this must be achieved by ensuring that the insulation is not broken down by the phenomena described above.
- the insulation comprises an inner layer, surrounding the conductor, with semiconducting properties and that the insulation is also provided with at least one additional outer part, surrounding the solid insulating layer, with semiconducting properties.
- the electric load on the material decreases as a consequence of the fact that the semiconducting parts around the solid insulating layer will constitute equipotential surfaces and that the electric field in the solid insulating layer will thus be distributed uniformly over the thickness of the layer.
- the outer semiconducting layer may be connected to a ground potential. This means that, for such a cable, the outer casing of the winding in its entire length may be kept at ground potential.
- the outer layer may also be cut off at suitable locations along the length of the conductor and each cut-off partial length may be directly connected to a chosen potential, ground potential.
- a further improvement of the invention is achieved by making the coils and the slots in which the coils are placed circular instead of rectangular.
- the coils By making the coils circular, these will be surrounded by a constant B field without concentrations where magnetic saturation may arise. Also the E field in the coil will be distributed uniformly over the cross section and local loads on the insulation are considerably reduced.
- the strands may be insulated from each other and only a small number of strands may be left uninsulated and in contact with the inner semiconducting layer, to ensure that is at the same potential as the conductor.
- a high-voltage cable for transmission of electric energy is composed of conductors with extruded insulation with an inner and an outer semiconductor part. During transmission of electric energy, the starting-point has long been that the insulation should be free from defects.
- Isulation of a conductor for a rotating single-winding/multiple-winding machine according to the invention may be applied in some other way than by means of extrusion, for example by spraying or the like. It is important, however, that the insulation should exhibit similar thermal properties through the whole cross section.
- the semiconducting layers may be supplied with the insulation in connection with the insulation being applied to the conductors.
- cables with a circular cross section are used among other things, to obtain a better packing density, cables with a different cross section may be used.
- the cable is disposed in several consecutive turns in slots in the magnetic core.
- the rotating high-voltage single-winding/multiple-winding machine is designed as a single-winding machine, it is normally utilized for six-pulse rectification.
- filter and module methods are available which cause the ripple on the rectified six-pulse voltage to be kept within acceptable limits.
- a rotating high-voltage multiple-winding machine may, in principle, be designed with an optional number of winding systems and an optional number of phases.
- a preferred embodiment consists of a 2 ⁇ 3 phase system, electrically displaced relative to each other by 30 electrical degrees as is required for a 12-pulse rectification.
- Other feasible combinations are a 2 ⁇ 2 phase system, a 4 ⁇ 3 phase system, etc.
- a rotating high-voltage single-winding/multiple-winding machine may operate within a wide frequency range. For large machines it may be a question of a few hundred Hz whereas for machines within the lower power range, frequencies of up to a few kHz may occur.
- the winding can be designed as a multi-layer concentric cable winding to reduce the number of coil-end crossings.
- the cable may be made with tapered insulation to utilize the magnetic core in a better way, in which case the shape of the slots may be adapted to the tapered insulation of the winding.
- a significant advantage with a rotating high-voltage single-winding/multiple-winding machine according to the invention is that the E field is near zero in the coil-end region outside the outer semiconductor and that with the outer casing at ground potential, the electric field need not be controlled. This means that no field concentrations can be obtained, neither within sheets, in coil-end regions, nor in the transition therebetween.
- Devices according to the invention offer great possibilities of integration of parts included, such as semiconductor devices, cooling systems, grounding systems, etc. This will be described in greater detail in connection with the description of embodiments.
- the present invention also relates to a method of manufacturing the magnetic circuit and, in particular, the winding.
- the method for manufacturing comprises disposing the winding in the slots by threading a cable into the openings in the slots in the magnetic core. Since the cable is flexible, it can be bent and this permits a cable length to be disposed in several turns in a coil. The coil ends will then consist of bending zones in the cables. The cable may also be joined in such a way that its properties remain constant over the cable length.
- Insulating windings and impregnation of the coils are also exceedingly complicated and expensive techniques when manufacturing rotating electric machines today.
- a rotating high-voltage single-winding/multiple-winding machine according to the invention can also be designed as an air-gap-wound machine without magnetic material or as a machine with magnetic material in the back portion only.
- a rotating high-voltage single-winding/multiple-winding machine with converters included in a device for speed control means a considerable number of important advantages in relation to corresponding prior art machines.
- high voltage are meant here voltages exceeding 10 kV and up to the voltage levels which occur for power networks.
- An important advantage is that a chosen potential, for example ground potential, has been consistently conducted along the whole winding, which means that the coil-end region can be made compact and that bracing means in the coil-end region can be applied at practically ground potential or any other chosen potential.
- Still another important advantage is that oil-based insulation and cooling systems disappear. This means that no sealing problems may arise and that the dielectric ring previously mentioned is not needed.
- the invention comprises achieving a high-voltage variable-speed electric machine drive.
- the above-mentioned power conversion between AC and AC is suitably used, which means ac conversion/ac conversion with an arbitrary ratio between the frequency, amplitude, phase position, and phase number of the voltages.
- Such an arrangement functions as a kind of “ac transformer” which is able to reduce or increase the voltage, change frequencies and/or change phase numbers.
- the connection may have a pure AC/AC conversion, for example with a matrix converter, but may also be designed as a dc intermediate link.
- the machine may be designed as a two-winding machine with feeding via two three-phase systems with phase-shifted voltages.
- a connection for such high-voltage electric machine operation is clear from FIG. 4 a.
- FIG. 4 a shows an installation which is capable of serving both as a motor drive and as a generator drive.
- the currently maximum suitable voltage level of the machine windings amounts to 25-30 kV.
- power may be obtained from an ac network which, for example, may be a 132 kV network.
- the power conversion from alternating current with a fixed mains frequency to the variable voltage and frequency which are needed for speed control takes place in the example shown via an AC/AC conversion with a dc intermediate link, at a higher voltage level than 25-30 kV.
- the mains frequency is obtained via a transformer T 3 with two secondary windings to achieve two voltage systems shifted 30 electrical degrees relative to each other.
- connection according to FIG. 4 a is to describe a generator drive
- the generator GF is driven by a turbine, and via the AC/AC power conversion the windings of the transformer T 3 may have such voltages that the ac network is fed with the desired voltage.
- connection according to FIG. 4 a has four parallel dc conductors which are physically extended in parallel over a short distance.
- the dc conductors carry equal currents but in two directions.
- a connection according to FIG. 4 b is to prefer, since two dc connections are eliminated when the converters are series-connected.
- the connection according to FIG. 4 b causes the windings of the single-winding/multiple-winding machine to be subjected to dc potential.
- connection according to FIG. 4 c is an improvement of the connection in FIG. 3 and connects the converters in parallel, which means that the windings of a single-winding/multiple-winding machine are not subjected to dc potential.
- FIG. 1 shows a conventional HVDC transmitter station.
- FIG. 2 shows an HVDC transmitter station with a so-called “Direct Connection”.
- FIG. 3 shows a so-called interphase transformer connection.
- FIGS. 4 a, 4 b and 4 c show connections or high-voltage electric machine drive according to the invention.
- FIG. 5 shows the parts include in the current modified standard cabls.
- FIG. 6 shows an embodiment of an axial end view of a sector/pole pitch of a magnetic circuit according to the invention.
- One important condition for being able to manufacture a magnetic circuit in accordance with the summary of the invention is to use for the winding a cable with a semiconducting layer surrounding the conductor, which layer is surrounded by a layer of solid electric insulation and a semiconducting layer surrounding the solid layer.
- Such cables are available as standard cables for other power engineering fields of use.
- the inner current-carrying conductor comprises a number of non-insulated strands. Around the strands there is a semiconducting inner casing. Around this semiconducting inner casing, there is an insulating layer of solid insulation.
- Such solid insulation is XLPE or, alternatively, so-called EP rubber such as silicone rubber, thermoplastic resins or crosslinked thermoplastic resins.
- This insulating layer is surrounded by an outer semiconducting layer which, in turn, is surrounded by a metal shield and a sheath.
- a cable will be referred to below as a power cable.
- a rotating high-voltage single-winding/multiple-winding machine has as windings a cable, a preferred embodiment of which is shown in FIG. 5.
- the cable 1 is described in the figure as comprising a current-carrying conductor 2 which comprises transposed both non-insulated and insulated strands. Electromechanically transposed, solid insulated strands are also possible.
- the cable used as a winding in the preferred embodiment has no metal shield and no external sheath.
- this may be cut off, preferably in the coil end, that is, somewhere in the transitions from the stack of sheets to the end windings. Each cut-off part is then connected to ground, whereby the outer semiconductor will be maintained at, or near, ground potential in the whole cable length. This means that, around the solid insulated winding at the coil ends, the contactable surfaces, and the surfaces which are dirty after some time of use, only have negligible potentials to ground, and they also cause negligible electric fields.
- the design of the magnetic circuit as regards the slots and the teeth, respectively is of decisive importance.
- the slots should be connected as close to the casing of the coil sides as possible. It is also desirable that the teeth at each radial level are as wide as possible. This is important to minimize the losses, the magnetization requirement, etc., of the machine.
- FIG. 6 shows an embodiment of an axial end view of a sector/pole pitch 6 of a machine according to the invention.
- the rotor with the rotor pole is designated 7 .
- the stator is composed of a laminated core of electric sheets successively composed of sector-shaped sheets. From a back portion 8 of the core, located at the radially outermost end, a number of teeth 9 extend radially inwards towards the rotor.
- slots 10 Between the teeth there are a corresponding number of slots 10 .
- the use of cables 11 according to the above among other things permits the depth of the slots for high-voltage machines to be made larger than what is possible according to the state of the art.
- the slots have a cross section tapering towards the rotor since the need of cable insulation becomes lower for each winding layer towards the rotor.
- the slot substantially consists of a circular cross section 12 around each layer of the winding with narrower waist portions 13 between the layers. With some justification, such a slot cross section may be referred to as a “cycle chain slot”.
- the cable which is used as a winding may be a conventional power cable as the one described above.
- the grounding of the outer semiconducting shield then takes place by stripping the metal shield and the sheath of the cable at suitable locations.
- the magnetic circuit may be located in the stator and/or the rotor of the rotating high-voltage single-winding/multiple-winding machine.
- the design of the magnetic circuit will largely correspond to the above description independently of whether the magnetic circuit is located in the stator and/or the rotor.
- the machine may be designed as an air-gap-wound machine without magnetic material or with magnetic material in the back portion only.
- windings are preferably used which may be described as multilayer, concentric cable windings. Such windings mean that the number of crossings at the coil ends has been minimized by placing all the coils within the same group radially outside one another. This also permits a simpler method for the manufacture and the threading of the stator winding in the different slots. If the machine is made as a machine with salient poles, the winding/windings will be wound around the salient poles.
- the cable may be wound around salient poles in a way which resembles an embodiment of a high-voltage transformer according to Swedish patent application 9700335-4.
- the semiconductor devices may constitute an integral part of the high-voltage single-winding/multiple-winding machine.
- the single-winding/multiple-winding machine and the semiconductor devices may have a common cooling system.
- the single-winding/multiple-winding machine and the semiconductor devices shall have the same, and common, ground connection.
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Abstract
The present invention relates to installations for transformerless generation of HVDC and wherein the installation comprises rotating high-voltage single-winding/multiple-winding machines and converters. The single-winding/multiple-winding machine comprises a magnetic circuit with one or more magnetic cores and one or more windings, phase-shifted in space, which comprise a cable with one or more current-carrying conductors (2), each conductor comprising a number of strands, around each strand there being arranged an inner semiconducting layer (3), around which is arranged an insulating layer (4) of solid insulation, around which is arranged an outer semiconducting layer (5).
Description
- The present invention relates to installations for transformerless generation of HVDC (high-voltage direct current) and wherein the installation comprises a rotating high-voltage single-winding or multiple-winding machine and a converter. The invention also comprises devices for high-voltage electric machine operation with a variable speed. In practice, this means that the installations convert a mechanical torque into direct current and direct voltage without intermediate transformers, and that the installations convert direct current and direct voltage into mechanical torque without intermediate transformers.
- The single-winding or multiple-winding machine comprises a magnetic circuit with one or more cores of laminated, normal or oriented, sheet or other, for example amorphous or powder-based, material, or any other action for the purpose of allowing an alternating flux, one or more winding systems, cooling systems, etc., which may be disposed in the stator or the rotor of the machine, or in both.
- The single-winding or multiple-winding machine may also be made as an air-gas-wound machine Without magnetic material or with magnetic material only in the back portion.
- The invention also comprises methods for manufacturing magnetic circuits for a rotating high-voltage single-winding/multiple-winding machine.
- As mentioned under the “Technical Field”, devices according to the invention are primarily intended to be part of installations for transformerless generation of high-voltage direct current and for high-voltage electric machine drives. Installations where the invention will be used normally lie within the power range of 1 MW to 15 GW and comprise one or several rotating machines.
- Within electronic power engineering there is a technical field which is currently referred to as power electronics. This expression corresponds to the German “Leistungselektronik” and is sometimes still called “Stromrichtertechnik” in German. The field comprises conversion of electric power between different forms, such as conversion between
- DC and AC, inverter operation
- AC and DC, rectifier operation
- AC and AC corresponds to ac conversion/ac conversion with an arbitrary ratio between the frequency, amplitude, phase position and phase number of the voltages, DC and DC corresponds to dc conversion/dc conversion.
- The terminology in this field is unfortunately not quite consistent. However, an IEC summary is to be found in “International Electrotechnical Dictionary” and in Publ. IEC 60050-551 IEV “Power electronics”.
- There are a very large number of different semiconductor components which may be included in the fields of use which are comprised by the patent application. One example of the state of the art in this respect is found in “Modern Power Electronics” by Bose et al, IEEE Industrial Electronics Society, ISBN:0-87942-282-3. Among the components mentioned there are:
- thyristors, diodes, triacs, gate turn-off thyristors (GTO), bipolar transistors (BJT) , PWM transistors, MOSFET, insulated gate bipolar transistors (IGBT), static induction transistors (SIT), static induction thyristors (SITH), MOS-controlled thyristors (MCT), etc.
- Semiconductor connections for inverter operation and rectification are commonly referred to in English as “converters”. No unambiguous Swedish correspondence exists. Since that part of the invention which deals with HVDC power conversion comprises both inverter operation and rectifier operation, the semiconductor connections under discussion will be referred to below as converters.
- For that part of the invention which deals with high-voltage electric machine drive with a variable speed, the above-mentioned AC/AC power conversion will be used. Such electric machine drive will be described below both with regard to the state of the art and with regard to the application according to the invention.
- To be able to describe both the technical and economic advantages and the gains derived by using devices according to the invention, a description will be given both of how installations for generation of HVDC and for high-voltage electric machine drive with a variable speed are designed according to the state of the art.
- A conventional HVDC transmitter station is clear from FIG. 1. In principle, it comprises a number of ac generators G1 - - - Gn which, according to the state of the art, have a voltage of 25-30 kV. Via transformers A1 - - - An, preferably D/Y-connected, the generator voltage is stepped up to a suitable ac transmission level and is transmitted over shorter of longer distances via ac transmission lines in a high-voltage ac network. The predominant method for rectification is then to use so-called 12-pulse rectification. The sine shape in the ac network is secured with ac filters near the converters. The 12-pulse rectification assumes that consecutively series-connected converter bridges B1 - - - Bn are fed from ac systems which are displaced 30 electrical degrees relative to each other. This is achieved by connecting to the high-voltage ac network Y/Y-connected converter transformers Y1 - - - Yn and corresponding Y/D-connected converter transformers D1 - - - Dn, which are allowed to feed the converters.
- Such a conventional HVDC transmitter station thus comprises two transformer stages, ac filters, ac circuit breakers and an ac busbar system. Because the transformers are normally intended for transmission of high powers, they are normally oil-cooled and oil-insulated. Because of the series-connected converters, the windings and the bushings of the converter transformers will be subjected to a rising dc potential, counting from ground. It places very heavy demands on the insulation and the bushings of these transformers. This is describes, inter alia, in “Power Transmission by Direct Current” by E. Uhlmann, Springer Verlag 1975, pp. 327-328, in ELECTRA No. 141, April 1992, pp. 34-39, and in ELECTRA No. 155, August 1994, pp. 6-30.
- An HVDC transmission according to the one described above is described, inter alia, in an article entitled “The Skagerack transmission”—The world's longest HVDC submarine cable link” in Asea Journal 1980, Vol. 53, Nos. 1-2, pp. 3-12, and in an article “Direct connection of generators to HVDC converters” in ELECTRA No. 149, August 1993.
- Recently, an embodiment of an HVDC transmitter station has been discussed which comprises direct connection from each generator to the Y/Y-connected and the Y/D-connected converter transformers. Such an installation is described, inter alia, in the above-mentioned article in ELECTRA and is here referred to as a “direct connection”.
- Such a connection is clear from FIG. 2. The voltage from the generators G1 - - - Gn is here fed directly to the converter transformers Y - - - Yn and D1 - - - Dn, respectively. Such a connection makes greater demands on the converter transformers since they must now also be responsible for the step-up transformation of the voltage of the generators to the level corresponding to the desired direct-voltage level.
- One problem with such a connection is that converter harmonics may give increased losses in the stator windings of the generators.
- To distinguish the present invention from the prior art, it will be especially pointed out that the “HVDC converter” referred to in the above-mentioned article in ELECTRA Nol 149 for direct connection to the generators comprise the two Y/Y-connected and Y/D-connected converter transformers, respectively, and the converters.
- There is a special interphase transformer converter connection, which is shown in FIG. 3. In conformity with FIGS. 1 and 2, the supply of the converters S1 and S2 takes place by means of two three-phase voltages, displaced by 30 electrical degrees relative to each other, via the transformers T1 and L2. If the connection otherwise comprises the reactors R1 and R2, no dc potential stress arises on the feeding transformers or generators. R1 and R2 are often designed with a common core and winding as well as a centre tap.
- In the introductory part of the specification it was mentioned that a device according to the invention comprises a single-winding/multiple-winding machine. One example of a multiple-winding machine according to the state of the art is described in U.S. Pat. No. 4,132,914 entitled “Six-phase winding of electric machine stator”. The windings are here especially formed to obtain as low voltages as possible between the external connections. The six-phase windings in this and similar machines are formed as two three-phase windings which are normally electrically displaced relative to each other by 30 electrical degrees. This permits a possibility of subsequently achieving one single three-phase voltage with the aid of a Y-connected and a D-connected transformer.
- The above-mentioned machine and similar machines according to the state of the art are designed for voltages of up to about 25 kV. Machines with two three-phase windings, electrically displaced relative to each other by 30 electrical degrees, may be used according to the above, without intermediate transformers, for 12-pulse rectification with converters. With the highest voltage in existing machines, however, the rectified voltage may amount to a maximum of about 30 kV, symmetrically distributed as about +/−15 kV around ground potential.
- Series connection of converters fed from several generators for achieving what is commonly termed HVDC, that is, direct voltages of 100 kV and higher, is not possible with generators according to the current technique with mica-based insulation technique because these do not withstand the dc component to which the generator windings in the most commonly used converter connections will be subjected.
- A rotating high-voltage single-winding/multiple-winding machine included in an installation according to the invention is able to operate as a variable-speed motor fed via semiconductor connections from a high-voltage dc network and as a generator to generate an ac network via semiconductor connections and transformers.
- Electric machine drives with variable speed for ac machines according to the state of the art assumes, for various practical reasons, that the machine is provided with two three-phase windings displaced relative to each other by 30 electrical degrees. For the speed control, the machines then have to be supplied with a variable frequency. The voltage level of the supply according to the state of the art is of the order of magnitude of 5 kV.
- Motor drives of the above-mentioned kind are published in a number of pamphlets and articles, such as in “High-speed synchronous motors. Adjustable speed drives”, Asea pamphlet OG 135-101E, “Freqsyn—a new drive system for high-power applications”, Asea Journal 59 (1986):4, pp. 16-19. An order for 100-MW adjustable-speed motors for driving a wind tunnel fan has been placed by NASA according to
ABB Review 9/1995, p. 38. - The supply of such motor drives may take place in different ways, for example as a pure AC/AC power conversion or from a direct-voltage network via controllable converters. The construction of such an installation is described, inter alia, in an article entitled “Synchronous machines with single or double 3-phase star-connected winding fed by 12-pulse load commutated inverter”, published in ICEM 94, International Conference on Electrical Machines, Part Vol. 1, pp. 267-272.
- Electric machine drives with a variable speed may also be achieved with machines with a winding system if the supply takes place while utilizing the latest technical development, so-called PMW technique, that is, with pulse-width modulation and self-commutated converters, in which case also a six-pulse connection may be used.
- Regarding somewhat smaller rotating electric machines, the so-called reluctance machines may be mentioned, which are currently designed for up to a few hundred kilowatts, wherein both the stator and the rotor are provided with salient poles. Such motors are described, inter alia, in “Variable speed switched reluctance motors” in IEE Proc. B, Vol. 127, November 1980, pp. 253-265. The machines are currently low-voltage machines and the windings surround the salient poles of the stator in many layers. These reluctance machines are examples of machines which may be further developed for connection via converters to high dc voltage.
- As will have been clear from the above, the present invention comprises a rotating high-voltage single-winding/multiple-winding machine intended for voltage levels significantly exceeding those which apply to machines according to the state of the art. This also entails great possibilities for electric machine drives with variable speed at considerably higher voltage levels and the advantages this brings with regard to machine power etc.
- To be able to describe the advantages and the inventive step which the invention represents, a description will first be made of the composition of such machines according to the state of the art. The single-winding/multiple-winding machine according to the invention relates to a machine which is capable of generating a voltage system or several voltage systems, phase-shifted in space, with a corresponding winding system. In all essentials, the composition of the rotating high-voltage single-winding/multiple-winding machine according to the invention is independent of whether the machine is made as a single-winding machine or whether it is made as a multiple-winding machine and whether it is used for HVDC generation or for high-voltage variable-speed motor drives.
- The state of the art will therefore be described starting from a conventional single-winding machine with a voltage level of about 25-30 kV exemplified on the basis of a synchronous machine. The description substantially relates to the magnetic circuit of such a machine and how this is composed according to classic technique. Since the magnetic circuit referred to in most cases is disposed in the stator, the magnetic circuit below will normally be described as a stator with a laminated core, the winding of which will be referred to as a stator winding, and the slots in the laminated core for the winding will be referred to as stator slots or simply slots.
- Most synchronous machines have a field winding in the rotor, where the main flux is generated by direct current, and an ac winding in the stator. The synchronous machines are normally of three-phase design. Sometimes, the synchronous machines are designed with salient poles. The latter have an ac winding in the rotor. Sometimes, the machines are designed with polyphase windings both in the stator and in the rotor as so-called synchronous flux machines to allow operation at other than synchronous speeds.
- The stator body for large synchronous machines is often made of sheet steel with a welded construction. The laminated core is normally made from varnished 0.35 or 0.5 mm electric sheet. For larger machines, the sheet is punched into segments which are attached to the stator body by means of wedges/dovetails. The laminated core is retained by pressure fingers and pressure plates.
- For cooling of the windings of the synchronous machine, three different cooling systems are available.
- In case of air cooling, both the stator winding and the rotor winding are cooled by cooling air flowing through. The cooling air channels are to be found both in the stator laminations and in the rotor. For ventilation and cooling by means of air, the laminated core at least for medium-sized and large machines is divided into stacks with both radial and axial ventilation ducts disposed in the core. The cooling air may consist of ambient air but at powers exceeding 1 MW, a closed cooling system with heat exchangers is substantially used. Air is the substantial medium for hydrogenerators.
- Hydrogen cooling is normally used in turbogenerators up to about 400 MW and in large synchronous condensers. The cooling method functions in the same way as in air cooling with heat exchangers, but instead of air as coolant there is used hydrogen gas. The hydrogen gas has better cooling capacity than air, but difficulties arise at seals and in monitoring leakage.
- For turbogenerators in the power range of 500-1000 MW, it is known to apply water cooling of both the stator winding and the rotor winding. The cooling channels are in the form of tubes which are placed inside conductors in the stator winding.
- One problem with large machines is that the cooling tends to become non-uniform and that, therefore, temperature differences arise across the machine.
- The stator winding is disposed in slots in the laminated core. The slots normally have a cross section as that of a rectangle or a trapezoid. Each winding phase comprises a number of series-connected coil groups and each coil group comprises a number of series-connected coils. The different parts of the coil are designated coil side for that part which is placed in the stator and coil end for that part which is disposed outside the stator. A coil comprises one or more conductors brought together in height and/or width. Between each conductor there is a thin insulation, for example epoxy/glass fibre. The coil is insulated against the slot with a coil insulation, that is, an insulation intended to withstand the rated voltage of the machine to ground. As insulating material, various plastic, varnish and glass fibre materials may be used. Usually, so-called mica tape is used, which is a mixture of mica and hard plastic, especially produced to provide resistance to partial discharges, which can rapidly break down the insulation. The insulation is applied to the coil by winding the mica tape around the coil in several layers. The insulation is impregnated, and then the coil side is painted with a coal-based paint to improve the contact with the surrounding stator which is connected to ground potential.
- The conductor area of the windings is determined by the relevant current intensity and by the cooling method used. The conductor and the coil are usually formed with a rectangular shape to maximize the amount of conductor material in the slot. A typical coil is formed of so-called Roebel bars, in which certain of the bars may be made hollow for a coolant. A Roebel bar comprises a plurality of rectangular, parallel-connected copper conductors, which are transposed 360 degrees along the slot. Ringland bars with transpositions of 540 degrees and other transpositions also occur. The transposition is made to avoid the occurrence of circulating currents which are generated in a cross section of the conductor material, as viewed from the magnetic field.
- In this context, it should also be pointed out that, in connection with converter operation, harmonics arise in the currents. These harmonics are not distributed uniformly over the rectangular cross section, which leads to skin effect and increased losses.
- For mechanical and electrical reasons, a machine cannot be made in just any size. The machine power is determined substantially by three factors:
- The conductor area of the windings. At normal operating temperature, copper, for example, has a maximum value of 3-3.5 A/mm2.
- The maximum flux density (magnetic flux) in the stator and rotor material.
- The maximum electric field strength in the insulating material, the so-called dielectric strength.
- Polyphase ac windings are designed either as single-layer or two-layer windings. In the case of single-layer windings, there is only one coil side per slot, and in the case of two-layer windings there are two coil sides per slot. Two-layer windings are usually designed as diamond windings, whereas the single-layer windings which are relevant in this connection may be designed as a diamond winding or as a concentric winding. In the case of a diamond winding, only one coil span (or possibly two coil spans) occurs, whereas flat windings are designed as concentric windings, that is, with a greatly varying coil width. By coil width is meant the distance in circular measure between two coil sides belonging to the same coil, either in relation to the relevant pole pitch or in the number of intermediate slot pitches. Usually, different variants of chording are used, for example fractional pitch, to give the winding the desired properties. The type of winding substantially describes how the coils in the slots, that is, the coil sides, are connected together outside the stator, that is, at the coil ends.
- Outside the stacked sheets of the stator, the coil is not provided with a painted semiconducting ground-potential layer of carbon-based paint. The coil end is normally provided with an E-field control in the form of so-called corona protection varnish intended to convert a radial field into an axial field, which means that the insulation on the coil ends occurs at a high potential relative to ground. This sometimes gives rise to corona in the coil-end region, which may be destructive. The so-called field-controlling points at the coil ends entail problems in the design of a rotating electric machine.
- Normally, all large machines are designed with a two-layer winding and equally large coils. Each coil is placed with one side in one of the layers and the other side in the other layer. This means that all the coils cross each other in the coil end. If more than two layers are used these crossings render the winding work difficult and deteriorate the coil end.
- During the last few decades, there have been increasing requirements for rotating electric machines for higher voltages than what has previously been possible to design and manufacture. The maximum voltage level which, according to the state of the art, has been possible to achieve for synchronous machines with a good yield in the coil production is around 25-30 kV.
- Certain attempts to a new approach as regards the design of synchronous machines are described, inter alia, in an article entitled “Water-and-oil-cooled Turbogenerator TVM-300” in J. Elektrotechnika, No. 1, 1970, pp. 6-8, in U.S. Pat. No. 4,429,244, “Stator of Generator”, and in Russian patent document CCCP Patent 955369.
- The water- and oil-cooled synchronous machine described in J. Elektrotechnika is intended for voltages up to 20 kV. The article describes a new insulation system consisting of oil/paper insulation, which makes it possible to immerse the stator completely in oil. The oil can then be used as a coolant while a the same time using it as insulation. To prevent oil in the stator from leaking out towards the rotor, a dielectric oil-separating ring is provided at the internal surface of the core. The stator winding is made from conductors with an oval hollow shape provided with oil and paper insulation. The coil sides with their insulation are secured to the slots made with rectangular cross section by means of wedges. As coolant oil is used both in the hollow conductors and in holes in the stator walls. Such cooling systems, however, entail a large number of connections of both oil and electricity at the coil ends. The thick insulation also entails an increased radius of curvature of the conductors, which in turn results in an increased size of the winding overhang.
- To above-mentioned U.S. Pat. No. 4,429,244 relates to the stator part of a synchronous machine which comprises a magnetic core of laminated sheet with trapezoidal slots for the stator winding. The slots are tapered since the need of insulation of the stator winding is smaller towards the interior of the rotor where that part of the winding which is located nearest the neutral point is disposed. In addition, the stator part comprises a dielectric oil-separating cylinder nearest the inner surface of the core. This part may increase the magnetization requirement relative to a machine without this ring. The stator winding is made of oil-immersed cables with the same diameter for each coil layer. The layers are separated from each other by means of spacers in the slots and secured by wedges. What is special for the winding is that it comprises two so-called half-windings connected in series. One of the two half-windings is disposed, centered, inside an insulating sleeve. The conductors of the stator winding are cooled by surrounding oil. Disadvantages with such a large quantity of oil in the system are the risk of leakage and the considerable amount of cleaning work which may result from a fault condition. Those parts of the insulating sleeve which are located outside the slots have a cylindrical part and a conical termination reinforced with current-carrying layers, the duty of which is to control the electric field strength in the region where the cable enters the end winding.
- From CCCP 955369 it is clear, in another attempt to raise the rated voltage of the synchronous machine, that the oil-cooled stator winding comprises a conventional high-voltage cable with the sene dimension for all the layers. The cable is placed in stator slots formed as circular, radially disposed openings corresponding to the cross-section area of the cable and the necessary space for fixing and for coolant. The different radially disposed layers of the winding are surrounded by and fixed in insulating tubes. Insulating spacers fix the tubes in the stator slot. Because of the oil cooling, an internal dielectric ring is also needed here for sealing the oil coolant against the internal air gap. The disadvantages of oil in the system described above also apply to this design. The design also exhibits a very narrows radial waist between the different stator slots, which means a large slot leakage flux which significantly influences the magnetization requirement of the machine.
- A report from Electric Power Research Institute, EPRI, EL-3391, from 1984 describes a review of machine concepts for achieving a higher voltage of a rotating electric machine for the purpose of being able to connect a machine to a power network without an intermediate transformer. Such a solution is judged by the investigation to provide good efficiency benefits and great economic advantages. The main reason that it was considered possible in 1984 to start developing generators for direct connection to power networks was that at that time a superconducting rotor had been produced. The large magnetization capacity of the superconducting field makes it possible to use an air gap winding with a sufficient thickness to withstand the electrical stresses.
- By combining the most promising concept, according to the project, of designing a magnetic circuit with a winding, a so-called monolith cylinder armature, a concept where two cylinders of conductors are enclosed in three cylinders of insulation and the whole structure is fixed to an iron core without teeth, it was judged that a rotating electric machine for high voltage could be directly connected to a power network. The solution meant that the main insulation had to be made sufficiently thick to cope with phase-to-phase and phase-to-ground potentials. Obvious disadvantages with the proposed solution are that, in addition to requiring a superconducting rotor, it requires a very thick insulation which increases the size of the machine. The coil ends must be insulated and cooled with oil or freons to control the large electric fields in the ends. The whole machine must be hermetically enclosed to prevent the liquid dielectric from absorbing moisture from the atmosphere.
- When manufacturing rotating electric machines according to the state of the art, the winding is manufactured with conductors and insulation systems in several steps, whereby the winding must be preformed prior to mounting on the magnetic circuit. Impregnation for preparing the insulation system is preformed after mounting of the winding on the magnetic circuit.
- One object of the invention is to provide installations for transformerless generation of HVDC and that the installation includes a rotating single-winding/multiple-winding machine with such a high voltage that the transformer stages shown in FIGS. 1 and 2, with step-up transformation of the generator voltage first to ac transmission high voltage and tne Y/Y-connected and Y/D-connected transformers, respectively, for achieving 12-pulse rectification with converters, can be eliminated. Thus, the machine is intended, inter alia, to directly supply the converters with the high voltage which is needed for achieving an HVDC network. In this context, the difference with respect to the above-mentioned “Direct connection” described in ELECTRA should be noted. It is clear from the above, it is another object of the invention to provide installations for high-voltage variable-speed electric machine drives.
- In practice, the above two objects mean that the installations convert a mechanical torque, via converters, to direct current and direct voltage without intermediate transformers, and that the installations convert direct current and direct voltage, via converters, to a mechanical torque without intermediate transformers.
- The converters may also comprise one or more of the semiconductor devices which are mentioned under the “Background Art”.
- The introduction of such a single-winding/multiple-winding machine thus entails considerably lower investment costs and reduced requirements on space in relation co corresponding HVDC installations according to the state of the art. An HVDC installation according to the invention also permits the total efficiency of the installation to be increased. Also with regard to high-voltage variable-speed electric machine drives, the machine/converter concept according to the following description entails considerable advantages relative to the state of the art.
- A rotating high-voltage single-winding/multiple-winding machine as an integral part of the present invention entails a considerably reduced thermal stress on the stator. Temporary overloads of the machine thus become less critical and it sell be possible to drive the machine at overload for a longer period of time without running the risk of damage arising. This means considerable advantages for owners of power generating plants who are forced today, in case of operational disturbances, to rapidly switch to other equipment in order to ensure the delivery requirements laid down by regulations.
- With a rotating high-voltage single-winding/multiple-winding machine as an integral part of the present invention, the maintenance costs can be significantly reduced because transformers, on-load tap changers, circuit breakers, filters, transmission lines, reactors, etc., do not have to be included in the system.
- To increase the power of a rotating electric machine, it is known to attempt to increase the current in the ac coils. This has been achieved by optimizing the quantity of conducting material, that is, by close-packing of rectangular conductors in the rectangular rotor slots. The aim has been to handle the increase in temperature resulting from this by increasing the quantity of insulating material and using more temperature-resistant and hence more expensive insulating materials. The high temperature and field load on the insulation has also caused problems with the life of the insulation. In the relatively thick-walled insulating layers which are used for high-voltage equipment, for example impregnated layers of mica tape, partial discharges, PD, constitute a serious problem. When manufacturing these insulating layers, cavities, pores, and the like, will easily arise, in which internal corona discharges arise when the insulation is subjected to high electric field strengths. These corona discharges gradually degrade the material and may lead to electric breakdown through the insulation.
- The great and essential difference between a rotating electric machine according to the state of the art and the embodiment according to the invention is that the magnetic circuit of the rotating high-voltage single-winding/multiple-winding machine comprises one or more windings, phase-shifted in space, of a threaded or wound cable with one or more solid insulated conductors with a semiconducting layer both at the conductor and the casing and, between the two semiconducting layers, a layer with a solid insulation. The outer semiconducting layer may be connected to ground potential.
- If a converter connection according to FIGS. 1 and 2 is used, the solid insulating layer will be subjected to both ac and dc potentials. If, on the other hand, a converter connection according to FIG. 3 is used, the solid layer will be subjected to ac potential only. The cable with which the windings in a machine according to the invention is wound must thus be chosen with regard to the potential stress in question.
- The present invention is based on the realization that, to be able to increase the power of a rotating electric machine in a technically and economically justifiable way, this must be achieved by ensuring that the insulation is not broken down by the phenomena described above. This can be achieved according to the invention by using as insulation layers made in such a way that the risk of cavities and pores is minimal, for example a solid extruded insulating layer of a suitable solid insulating material, such as thermoplastic resins or, alternatively, crosslinked materials such as XLPE or rubber, for example EP rubber or silicone rubber, also alternatively crosslinked. In addition, it is important that the insulation comprises an inner layer, surrounding the conductor, with semiconducting properties and that the insulation is also provided with at least one additional outer part, surrounding the solid insulating layer, with semiconducting properties. By using only a solid insulating layer which may be manufactured with a minimum of defects and, in addition, providing the solid layer with an inner and an outer semiconducting part, it can be ensured that the thermal and electric loads are reduced. At temperature gradients, the insulating part with the semiconducting layers will constitute a monolithic part and defects caused by different temperature expansion in the solid layer and the surrounding semiconducting layers do not arise. The electric load on the material decreases as a consequence of the fact that the semiconducting parts around the solid insulating layer will constitute equipotential surfaces and that the electric field in the solid insulating layer will thus be distributed uniformly over the thickness of the layer. The outer semiconducting layer may be connected to a ground potential. This means that, for such a cable, the outer casing of the winding in its entire length may be kept at ground potential.
- The outer layer may also be cut off at suitable locations along the length of the conductor and each cut-off partial length may be directly connected to a chosen potential, ground potential. Around the outer semiconducting layer there may also be arranged other layers, casings and the like, such as a metal shield and a protective jacket.
- Further knowledge gained in connection with the present invention is that increased current load leads to problems with voltage (E) field concentrations at the corners at a cross section of a coil and that this entails large local loads on the insulation there. Likewise, the magnetic (B) field in the tooth of the rotor will be concentrated at the corners. This means that magnetic saturation arises locally and that the magnetic core is not utilized in full and that the waveform of the generated voltage/current will be distorted. In addition, eddy losses caused by induced eddy currents in the conductors, which arise because of the geometry of the conductors in relation to the B field, will entail additional disadvantages at increasing current densities.
- A further improvement of the invention is achieved by making the coils and the slots in which the coils are placed circular instead of rectangular. By making the coils circular, these will be surrounded by a constant B field without concentrations where magnetic saturation may arise. Also the E field in the coil will be distributed uniformly over the cross section and local loads on the insulation are considerably reduced. In addition, it is easier to place circular coils in slots in such a way that the number of coil sides per coil group may increase and an increase of the voltage may take place without the current in the conductors having to be increased. The reason is that the cooling of the conductors is facilitated by, on the one hand, a lower current density and hence lower temperature gradients across the insulation and, on the other hand, by the circular shape of the slots which entails a more uniform temperature distribution over a cross section. Additional improvements may also be achieved by composing the conductor from smaller parts, so-called strands. The strands may be insulated from each other and only a small number of strands may be left uninsulated and in contact with the inner semiconducting layer, to ensure that is at the same potential as the conductor.
- One further development of a conductor composed of strands is possible in that it is possible to insulate the strands with respect to each other in order thus to reduce the amount of eddy current losses in the conductor. One or a few of the strands may be left uninsulated to ensure that the semiconducting layer surrounding the conductor is at the same potential as the conductor.
- One advantage with circular conductor shapes and the division into strands is that the harmonic currents are distributed very well. It may, therefore, be an advantage to have more strands in the conductor when harmonic currents may arise than when the current is more sinusoidal.
- It is known that a high-voltage cable for transmission of electric energy is composed of conductors with extruded insulation with an inner and an outer semiconductor part. During transmission of electric energy, the starting-point has long been that the insulation should be free from defects.
- Isulation of a conductor for a rotating single-winding/multiple-winding machine according to the invention may be applied in some other way than by means of extrusion, for example by spraying or the like. It is important, however, that the insulation should exhibit similar thermal properties through the whole cross section. The semiconducting layers may be supplied with the insulation in connection with the insulation being applied to the conductors.
- Preferably, cables with a circular cross section are used among other things, to obtain a better packing density, cables with a different cross section may be used.
- To build up a voltage in the rotating high-voltage single-winding/multiple-winding machine, the cable is disposed in several consecutive turns in slots in the magnetic core.
- When the rotating high-voltage single-winding/multiple-winding machine is designed as a single-winding machine, it is normally utilized for six-pulse rectification. Nowadays, filter and module methods are available which cause the ripple on the rectified six-pulse voltage to be kept within acceptable limits.
- A rotating high-voltage multiple-winding machine may, in principle, be designed with an optional number of winding systems and an optional number of phases. A preferred embodiment consists of a 2×3 phase system, electrically displaced relative to each other by 30 electrical degrees as is required for a 12-pulse rectification. Other feasible combinations are a 2×2 phase system, a 4×3 phase system, etc.
- A rotating high-voltage single-winding/multiple-winding machine according to the invention may operate within a wide frequency range. For large machines it may be a question of a few hundred Hz whereas for machines within the lower power range, frequencies of up to a few kHz may occur.
- The winding can be designed as a multi-layer concentric cable winding to reduce the number of coil-end crossings. The cable may be made with tapered insulation to utilize the magnetic core in a better way, in which case the shape of the slots may be adapted to the tapered insulation of the winding.
- A significant advantage with a rotating high-voltage single-winding/multiple-winding machine according to the invention is that the E field is near zero in the coil-end region outside the outer semiconductor and that with the outer casing at ground potential, the electric field need not be controlled. This means that no field concentrations can be obtained, neither within sheets, in coil-end regions, nor in the transition therebetween.
- Devices according to the invention offer great possibilities of integration of parts included, such as semiconductor devices, cooling systems, grounding systems, etc. This will be described in greater detail in connection with the description of embodiments.
- The present invention also relates to a method of manufacturing the magnetic circuit and, in particular, the winding. The method for manufacturing comprises disposing the winding in the slots by threading a cable into the openings in the slots in the magnetic core. Since the cable is flexible, it can be bent and this permits a cable length to be disposed in several turns in a coil. The coil ends will then consist of bending zones in the cables. The cable may also be joined in such a way that its properties remain constant over the cable length.
- This method entails considerable simplifications compared with the state of the art. The so-called Roebel bars are not flexible but must be preformed into the desired shape.
- Insulating windings and impregnation of the coils are also exceedingly complicated and expensive techniques when manufacturing rotating electric machines today.
- A rotating high-voltage single-winding/multiple-winding machine according to the invention can also be designed as an air-gap-wound machine without magnetic material or as a machine with magnetic material in the back portion only.
- To sum up, thus, a rotating high-voltage single-winding/multiple-winding machine with converters included in a device for speed control according to the invention means a considerable number of important advantages in relation to corresponding prior art machines. By high voltage are meant here voltages exceeding 10 kV and up to the voltage levels which occur for power networks. An important advantage is that a chosen potential, for example ground potential, has been consistently conducted along the whole winding, which means that the coil-end region can be made compact and that bracing means in the coil-end region can be applied at practically ground potential or any other chosen potential. Still another important advantage is that oil-based insulation and cooling systems disappear. This means that no sealing problems may arise and that the dielectric ring previously mentioned is not needed. One advantage is also that all forced cooling can be made at ground potential. A considerable space and weight saving from the installation point of view is obtained with a rotating high-voltage single-winding/multiple-winding machine according to the invention, since it replaces a previous installation design with two transformer stages. The very large and extensive bushings which are needed in the converter transformers to withstand the high dc potential to which bushings and windings are subjected are not needed with the machine concept according to the invention. The invention requires no superconducting rotor with the problems associated therewith, such as maintaining the temperature, encapsulation, and the like.
- As is clear from the title of this invention, the invention comprises achieving a high-voltage variable-speed electric machine drive. For this alternative, the above-mentioned power conversion between AC and AC is suitably used, which means ac conversion/ac conversion with an arbitrary ratio between the frequency, amplitude, phase position, and phase number of the voltages. Such an arrangement functions as a kind of “ac transformer” which is able to reduce or increase the voltage, change frequencies and/or change phase numbers. The connection may have a pure AC/AC conversion, for example with a matrix converter, but may also be designed as a dc intermediate link.
- The above-mentioned properties make the connection well suited to be included in an installation for high-voltage variable-speed electric machine operation together with the rotating high-voltage machine according to the invention. As will have been clear, according to conventional technique described above, the machine may be designed as a two-winding machine with feeding via two three-phase systems with phase-shifted voltages. A connection for such high-voltage electric machine operation is clear from FIG. 4a.
- FIG. 4a shows an installation which is capable of serving both as a motor drive and as a generator drive. For economic and other technical/practical reasons, the currently maximum suitable voltage level of the machine windings amounts to 25-30 kV. As motor drive, power may be obtained from an ac network which, for example, may be a 132 kV network. The power conversion from alternating current with a fixed mains frequency to the variable voltage and frequency which are needed for speed control takes place in the example shown via an AC/AC conversion with a dc intermediate link, at a higher voltage level than 25-30 kV. The mains frequency is obtained via a transformer T3 with two secondary windings to achieve two voltage systems shifted 30 electrical degrees relative to each other. These two systems each feed an AC/DC converter, AC1 and AC2, respectively. The direct voltage from these is then converted via the DC/AC converters AC3 and AC4 to two three-phase voltages, shifted 30 electrical degrees relative to each other, with the voltage and the frequency which are needed to drive the motor M and the load, for example a pump, with the desired speed.
- If the connection according to FIG. 4a is to describe a generator drive, the generator GF is driven by a turbine, and via the AC/AC power conversion the windings of the transformer T3 may have such voltages that the ac network is fed with the desired voltage.
- The connection according to FIG. 4a has four parallel dc conductors which are physically extended in parallel over a short distance. The dc conductors carry equal currents but in two directions. In case of a long transmission distance, a connection according to FIG. 4b is to prefer, since two dc connections are eliminated when the converters are series-connected. The connection according to FIG. 4b causes the windings of the single-winding/multiple-winding machine to be subjected to dc potential.
- The connection according to FIG. 4c is an improvement of the connection in FIG. 3 and connects the converters in parallel, which means that the windings of a single-winding/multiple-winding machine are not subjected to dc potential.
- FIG. 1 shows a conventional HVDC transmitter station.
- FIG. 2 shows an HVDC transmitter station with a so-called “Direct Connection”.
- FIG. 3 shows a so-called interphase transformer connection.
- FIGS. 4a, 4 b and 4 c show connections or high-voltage electric machine drive according to the invention.
- FIG. 5 shows the parts include in the current modified standard cabls.
- FIG. 6 shows an embodiment of an axial end view of a sector/pole pitch of a magnetic circuit according to the invention.
- One important condition for being able to manufacture a magnetic circuit in accordance with the summary of the invention is to use for the winding a cable with a semiconducting layer surrounding the conductor, which layer is surrounded by a layer of solid electric insulation and a semiconducting layer surrounding the solid layer. Such cables are available as standard cables for other power engineering fields of use. To be able to describe an embodiment, initially a short description of a standard cable will be made. The inner current-carrying conductor comprises a number of non-insulated strands. Around the strands there is a semiconducting inner casing. Around this semiconducting inner casing, there is an insulating layer of solid insulation. An example of such solid insulation is XLPE or, alternatively, so-called EP rubber such as silicone rubber, thermoplastic resins or crosslinked thermoplastic resins. This insulating layer is surrounded by an outer semiconducting layer which, in turn, is surrounded by a metal shield and a sheath. Such a cable will be referred to below as a power cable.
- A rotating high-voltage single-winding/multiple-winding machine has as windings a cable, a preferred embodiment of which is shown in FIG. 5. The
cable 1 is described in the figure as comprising a current-carryingconductor 2 which comprises transposed both non-insulated and insulated strands. Electromechanically transposed, solid insulated strands are also possible. Around the conductor there is an innersemiconducting casing 3 which, in turn, is surrounded by a solid insulatinglayer 4. This layer is surrounded by an outersemiconducting layer 5. The cable used as a winding in the preferred embodiment has no metal shield and no external sheath. To avoid induced currents and losses associated therewith in the outer semiconductor, this may be cut off, preferably in the coil end, that is, somewhere in the transitions from the stack of sheets to the end windings. Each cut-off part is then connected to ground, whereby the outer semiconductor will be maintained at, or near, ground potential in the whole cable length. This means that, around the solid insulated winding at the coil ends, the contactable surfaces, and the surfaces which are dirty after some time of use, only have negligible potentials to ground, and they also cause negligible electric fields. - To optimize a rotating high-voltage single-winding/multiple-winding machine, the design of the magnetic circuit as regards the slots and the teeth, respectively, is of decisive importance. In the embodiment with a threaded cable, the slots should be connected as close to the casing of the coil sides as possible. It is also desirable that the teeth at each radial level are as wide as possible. This is important to minimize the losses, the magnetization requirement, etc., of the machine.
- With access to a conductor for the windings as the above-mentioned cable, there are great possibilities of being able to optimize the magnetic core from several points of view. In the following, a magnetic circuit in the stator of the rotating high-voltage single-winding/multiple-winding machine is referred to. FIG. 6 shows an embodiment of an axial end view of a sector/
pole pitch 6 of a machine according to the invention. The rotor with the rotor pole is designated 7. In conventional manner, the stator is composed of a laminated core of electric sheets successively composed of sector-shaped sheets. From aback portion 8 of the core, located at the radially outermost end, a number ofteeth 9 extend radially inwards towards the rotor. Between the teeth there are a corresponding number ofslots 10. The use ofcables 11 according to the above among other things permits the depth of the slots for high-voltage machines to be made larger than what is possible according to the state of the art. The slots have a cross section tapering towards the rotor since the need of cable insulation becomes lower for each winding layer towards the rotor. As is clear from the figure, the slot substantially consists of acircular cross section 12 around each layer of the winding withnarrower waist portions 13 between the layers. With some justification, such a slot cross section may be referred to as a “cycle chain slot”. Since in such a high-voltage machine, a relatively large number of layers will be needed, and the supply of relevant cable dimensions as far as insulation and outer semiconductors are concerned is limited, it may in practice be difficult to achieve a desired continuous tapering of the cable insulation and the stator slot, respectively. In the embodiment shown in FIG. 6, cables with three different dimensions of the cable insulation are used, arranged in three correspondingly dimensionedsections - In an alternative embodiment, the cable which is used as a winding may be a conventional power cable as the one described above. The grounding of the outer semiconducting shield then takes place by stripping the metal shield and the sheath of the cable at suitable locations.
- The scope of the invention accommodates a large number of alternative embodiments, depending on the available cable dimensions as far as insulation and the outer semiconductor layer etc. are concerned. Also embodiments with so-called cycle chain slots can be modified in excess of what has been described here.
- As mentioned above, the magnetic circuit may be located in the stator and/or the rotor of the rotating high-voltage single-winding/multiple-winding machine. However, the design of the magnetic circuit will largely correspond to the above description independently of whether the magnetic circuit is located in the stator and/or the rotor. As mentioned in the introductory part of the description, the machine may be designed as an air-gap-wound machine without magnetic material or with magnetic material in the back portion only.
- As windings, windings are preferably used which may be described as multilayer, concentric cable windings. Such windings mean that the number of crossings at the coil ends has been minimized by placing all the coils within the same group radially outside one another. This also permits a simpler method for the manufacture and the threading of the stator winding in the different slots. If the machine is made as a machine with salient poles, the winding/windings will be wound around the salient poles.
- In an alternative embodiment of the rotating high-voltage single-winding/multiple-winding machine, the cable may be wound around salient poles in a way which resembles an embodiment of a high-voltage transformer according to Swedish patent application 9700335-4.
- In the examples of embodiments of single-winding/multiple-winding machines illustrated here, embodiments with a radial flux and axial winding currents have been used. Single-winding/multiple-winding machines with an axial air-gap flux and radial winding currents may also be designed in a way similar to that of low-voltage machines using present-day technique.
- In one embodiment of an installation according to the invention, the semiconductor devices may constitute an integral part of the high-voltage single-winding/multiple-winding machine.
- The single-winding/multiple-winding machine and the semiconductor devices may have a common cooling system.
- The single-winding/multiple-winding machine and the semiconductor devices shall have the same, and common, ground connection.
Claims (38)
1. An installation comprising a rotating high-voltage single-winding/multiple-winding machine and a converter, characterized in that a mechanical torque is converted into direct current and direct voltage via the converter without intermediate transformers and/or reactors.
2. An installation according to claim 1 , characterized in that the converter comprises semiconductor devices which are connected and function as an AC/DC converter.
3. An installation comprising a rotating high-voltage single-winding/multiple-winding machine and a converter, characterized in that direct current and direct voltage are converted via the converter into a mechanical torque without intermediate transformers and/or reactors.
4. An installation according to claim 3 , characterized in that the converter comprises semiconductor devices which are connected and function as a DC/AC converter.
5. An installation according to claims 1 and 2, characterized in that to the AC/DC rectifier there is connected a DC/AC inverter with direct connection to an ac network without intermediate transformers and/or reactors.
6. An installation according to claims 3 and 4, characterized in that to the dc side of the DC/AC inverter there is connected a DC/AC rectifier with direct connection to an ac network without intermediate transformers and/or reactors.
7. An installation according to claims 2 and 4, characterized in that to the semiconductor devices may consist of thyristors, diodes, triacs, gate turn-off thyristors (GTO), bipolar transistors (BJT), PWM transistors, MOSFET, insulated gate bipolar transistors (IGBT), static induction transistors (SIT), static induction thyristors (SITH), MOS-controlled thyristors (MCT) and similar components with semiconductor properties.
8. An installation according to claims 1, 2, 3 and 4, characterized in that the converters constitute an integral part of the rotating high-voltage single-winding/multiple-winding machine.
9. An installation according to claims 1, 2 and 5, characterized in that the converters constitute an integral part of the rotating high-voltage single-winding/multiple-winding machine.
10. An installation according to claims 1, 2 and 6, characterized in that the converters constitute an integral part of the rotating high-voltage single-winding/multiple-winding machine.
11. An installation according to claims 1, 2 and 5, characterized in that the rotating high-voltage single-winding/multiple-winding machine and the semiconductor devices have a common cooling system.
12. An installation according to claims 1, 2 and 6, characterized in that the rotating high-voltage single-winding/multiple-winding machine and the semiconductor devices have a common cooling system.
13. An installation according to claims 1, 2 and 5, characterized in that the rotating high-voltage single-winding/multiple-winding machine and the semiconductor devices have the same and common ground connection.
14. An installation according to claims 1, 2 and 6, characterized in that the rotating high-voltage single-winding/multiple-winding machine and the semiconductor devices have the same and common ground connection.
15. An installation according to claims 1 and 3 and wherein the rotating high-voltage single-winding/multiple-winding machine comprises a magnetic circuit with one or more magnetic cores and one or more windings phase-shifted in space, characterized in that the windings comprise one or more current-carrying conductors (2), that around each conductor there is arranged a first layer (3) with semiconducting properties, that around the first layer there is arranged a solid insulating layer (4), and that around the insulating layer there is arranged a second layer (5) with semiconducting properties.
16. A rotating high-voltage single-winding/multiple-winding machine according to claim 15 , characterized in that the first layer (3) is at substantially the same potential as the conductor.
17. A rotating high-voltage single-winding/multiple-winding machine according to claim 15 , characterized in that the second layer (5) is arranged in such a way that it constitutes an equipotential surface surrounding the conductor/conductors.
18. A rotating high-voltage single-winding/multiple-winding machine according to claim 15 , characterized in that the second layer (5) is connected to ground potential.
19. A rotating high-voltage single-winding/multiple-winding machine according to claim 15 , 16, 17 or 18, characterized in that, for the winding, all the semiconducting layers and insulating layers exhibit similar thermal properties, such that, upon a thermal movement in the winding, no defects, cracks, or the like, occur in the insulating parts.
20. A rotating high-voltage single-winding/multiple-winding machine according to claim 15 , characterized in that the current-carrying conductor comprises a number of strands, whereby only a small number of the strands are non-insulated from each other.
21. A rotating high-voltage single-winding/multiple-winding machine wherein the magnetic circuit comprises a magnetic core and one or more windings phase-shifted in space, characterized in that the windings comprise a cable including one or more current carrying conductors (2), that each conductor comprises a number of strands, that around each conductor there is arranged an inner semiconducting layer (3), around which there is arranged an insulating layer (4) of solid insulation, around which there is arranged an outer semiconducting layer (5).
22. A rotating high-voltage single-winding/multiple-winding machine with a magnetic circuit according to claim 21 , characterized in that the cable also comprises a metal shield and/or a protective layer.
23. A rotating high-voltage single-winding/multiple-winding machine according to claim 21 , characterized in that the magnetic circuit is arranged in the stator and/or the rotor of the rotating electric machine.
24. A rotating high-voltage single-winding/multiple-winding machine according to claim 21 , characterized in that the outer semiconducting layer (5) is cut off into a number of parts which are separately connected to ground potential.
25. A rotating high-voltage single-winding/multiple-winding machine according to claim 21 , 22, 23 or 24, characterized in that with connection of the outer semiconducting layer to ground potential, the electric field of the machine outside the semiconducting layer both in the slots and in the coil-end region will be near zero.
26. A rotating high-voltage single-winding/multiple-winding machine according to claims 21 and 22, characterized in that, when the cable comprises several conductors, these are transposed.
27. A rotating high-voltage single-winding/multiple-winding machine with a magnetic circuit according to claim 21 , characterized in that the current-carrying conductor/conductors (2) comprise both non-insulated and insulated wires, stranded into a number of layers.
28. A rotating high-voltage single-winding/multiple-winding machine with a magnetic circuit according to claim 21 , characterized in that the current-carrying conductor/conductors (2) comprise both non-insulated and insulated strands, transposed into a number of layers.
29. A rotating high-voltage single-winding/multiple-winding machine with a magnetic circuit according to claim 21 , characterized in that the slots (10) are formed as a number of cylindrical openings (12), extending axially and radially outside one another, with a substantially circular cross section separated by a narrower waist portion (13) between the cylindrical openings.
30. A rotating high-voltage single-winding/multiple-winding machine with a magnetic circuit according to claims 21 and 29, characterized in that the substantially circular cross section of the cylindrical openings (12) of the slots, counting from a back portion (8) of the laminated core, is designed with a continuously decreasing radius.
31. A rotating high-voltage single-winding/multiple-winding machine with a magnetic circuit according to claims 21 and 29, characterized in that the substantially circular cross section of the cylindrical openings (12) of the slots, counting from a back portion (8) of the laminated core, is designed with a discontinuously decreasing radius.
32. A rotating high-voltage single-winding/multiple-winding machine wherein the magnetic circuit comprises a magnetic core and one or more windings, phase-shifted in space, characterized in that the magnetic core is formed with salient poles.
33. A rotating high-voltage single-winding/multiple-winding machine, characterized in that it is air-gap-wound.
34. A rotating high-voltage single-winding/multiple-winding machine, characterized in that the air-gap flux is radial.
35. A rotating high-voltage single-winding/multiple-winding machine, characterized in that the air-gap flux is axial.
36. A method for manufacturing a rotating high-voltage single-winding/multiple-winding machine comprising a magnetic circuit comprising a magnetic core comprising slots, channels or the like, whereby these slots etc. have at least one opening, accessible from the outside of the magnetic core, and a winding, characterized in that the winding is flexible and is threaded into the opening.
37. A method for manufacturing a magnetic circuit for a rotating high-voltage single-winding/multiple-winding machine, wherein the magnetic circuit is arranged in the stator and/or rotor of the rotating electric machine, which magnetic circuit comprises a magnetic core (8) with slots (10) for two or more windings (1), phase-shifted in space, and wherein the slots are formed as cylindrical openings (12), extending axially and radially, outside one another, with a substantially circular cross section, the method being characterized in that the winding comprises a cable which is threaded into the cylindrical openings.
38. A method for manufacturing a magnetic circuit for a rotating high-voltage single-winding/multiple-winding machine, wherein the magnetic circuit is arranged in the stator and/or rotor of the rotating electric machine and is formed as salient poles, the method being characterized in that the winding comprises a cable which is wound around the salient poles.
Applications Claiming Priority (4)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
SE9602079A SE9602079D0 (en) | 1996-05-29 | 1996-05-29 | Rotating electric machines with magnetic circuit for high voltage and a method for manufacturing the same |
SE9602079-7 | 1996-05-29 | ||
SE9700335A SE508556C2 (en) | 1997-02-03 | 1997-02-03 | Power transformer and reactor with windings with conductors |
SE9700335-4 | 1997-11-28 |
Publications (1)
Publication Number | Publication Date |
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US20020047268A1 true US20020047268A1 (en) | 2002-04-25 |
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Application Number | Title | Priority Date | Filing Date |
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US08/973,210 Expired - Fee Related US6940380B1 (en) | 1996-05-29 | 1997-05-27 | Transformer/reactor |
US08/952,990 Abandoned US20020047268A1 (en) | 1996-05-29 | 1997-05-27 | Rotating electrical machine plants |
US08/952,993 Expired - Fee Related US6822363B2 (en) | 1996-05-29 | 1997-05-27 | Electromagnetic device |
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Application Number | Title | Priority Date | Filing Date |
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US08/973,210 Expired - Fee Related US6940380B1 (en) | 1996-05-29 | 1997-05-27 | Transformer/reactor |
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US08/952,993 Expired - Fee Related US6822363B2 (en) | 1996-05-29 | 1997-05-27 | Electromagnetic device |
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Cited By (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
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WO2012162435A2 (en) * | 2011-05-23 | 2012-11-29 | Active Power, Inc. | Insulation system for prevention of corona discharge |
US20140083736A1 (en) * | 2012-09-25 | 2014-03-27 | Nexans | Silicone multilayer insulation for electric cable |
US20140209586A1 (en) * | 2013-01-29 | 2014-07-31 | Shenzhen Jasic Technology Development Co., Ltd | Portable igbt arc welding machine |
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US20230230722A1 (en) * | 2021-05-10 | 2023-07-20 | Te Connectivity Solutions Gmbh | Power Cable which Reduces Skin Effect and Proximity Effect |
Families Citing this family (71)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN1101612C (en) * | 1996-05-29 | 2003-02-12 | Abb股份公司 | Insulated conductor for high-voltage winding |
SE9703560D0 (en) * | 1997-09-30 | 1997-09-30 | Asea Brown Boveri | Induction controlled voltage control |
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NL1010664C2 (en) * | 1998-11-27 | 2000-05-30 | Belden Wire & Cable Bv | Electric conductor. |
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SE9904753L (en) * | 1999-12-23 | 2001-06-24 | Abb Ab | Use of HVDC insulated conductors in magnetic flow carriers |
GB2361109A (en) * | 2000-04-03 | 2001-10-10 | Abb Ab | Inductive device with a magnetic field bias arrangement |
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SE0002093L (en) * | 2000-06-06 | 2001-12-07 | Abb Ab | Device for direct current generation and electrical power generating plant |
JP2002027693A (en) | 2000-07-10 | 2002-01-25 | Mitsubishi Electric Corp | Coil conductor for dynamo-electric machine |
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DE10132718A1 (en) | 2001-07-05 | 2003-02-13 | Abb T & D Tech Ltd | Method for winding a three-phase cable transformer with coaxial cable and winding device therefor |
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US7078843B2 (en) * | 2003-09-05 | 2006-07-18 | Black & Decker Inc. | Field assemblies and methods of making same |
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KR100882856B1 (en) * | 2007-03-16 | 2009-02-10 | 김선호 | Protection Circuit for Power Supply Line with Noise Filter |
DE102007053685A1 (en) * | 2007-11-10 | 2009-05-14 | Abb Technology Ag | Manufacturing method for a multi-layer transformer winding with insulation layer |
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WO2011008514A2 (en) | 2009-06-30 | 2011-01-20 | Teco-Westinghouse Motor Company | Pluggable power cell for an inverter and providing modular power conversion |
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US8391938B2 (en) * | 2011-06-15 | 2013-03-05 | Electric Power Research Institute, Inc. | Transportable rapid deployment superconducting transformer |
US8901790B2 (en) | 2012-01-03 | 2014-12-02 | General Electric Company | Cooling of stator core flange |
NO2867012T3 (en) * | 2012-06-29 | 2018-02-10 | ||
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Citations (42)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US1508456A (en) * | 1924-01-04 | 1924-09-16 | Perfection Mfg Co | Ground clamp |
US1904885A (en) * | 1930-06-13 | 1933-04-18 | Western Electric Co | Capstan |
US2409893A (en) * | 1945-04-30 | 1946-10-22 | Westinghouse Electric Corp | Semiconducting composition |
US2650350A (en) * | 1948-11-04 | 1953-08-25 | Gen Electric | Angular modulating system |
US2749456A (en) * | 1952-06-23 | 1956-06-05 | Us Electrical Motors Inc | Waterproof stator construction for submersible dynamo-electric machine |
US3014139A (en) * | 1959-10-27 | 1961-12-19 | Gen Electric | Direct-cooled cable winding for electro magnetic device |
US3197723A (en) * | 1961-04-26 | 1965-07-27 | Ite Circuit Breaker Ltd | Cascaded coaxial cable transformer |
US3392779A (en) * | 1966-10-03 | 1968-07-16 | Certain Teed Prod Corp | Glass fiber cooling means |
US3411027A (en) * | 1965-07-15 | 1968-11-12 | Siemens Ag | Permanent magnet excited electric machine |
US3541221A (en) * | 1967-12-11 | 1970-11-17 | Comp Generale Electricite | Electric cable whose length does not vary as a function of temperature |
US3571690A (en) * | 1967-10-30 | 1971-03-23 | Voldemar Voldemarovich Apsit | Power generating unit for railway coaches |
US3651244A (en) * | 1969-10-15 | 1972-03-21 | Gen Cable Corp | Power cable with corrugated or smooth longitudinally folded metallic shielding tape |
US3660721A (en) * | 1971-02-01 | 1972-05-02 | Gen Electric | Protective equipment for an alternating current power distribution system |
US3666876A (en) * | 1970-07-17 | 1972-05-30 | Exxon Research Engineering Co | Novel compositions with controlled electrical properties |
US3684906A (en) * | 1971-03-26 | 1972-08-15 | Gen Electric | Castable rotor having radially venting laminations |
US3699238A (en) * | 1972-02-29 | 1972-10-17 | Anaconda Wire & Cable Co | Flexible power cable |
US3743867A (en) * | 1971-12-20 | 1973-07-03 | Massachusetts Inst Technology | High voltage oil insulated and cooled armature windings |
US3787607A (en) * | 1972-05-31 | 1974-01-22 | Teleprompter Corp | Coaxial cable splice |
US3813764A (en) * | 1969-06-09 | 1974-06-04 | Res Inst Iron Steel | Method of producing laminated pancake type superconductive magnets |
US3828115A (en) * | 1973-07-27 | 1974-08-06 | Kerite Co | High voltage cable having high sic insulation layer between low sic insulation layers and terminal construction thereof |
US3912957A (en) * | 1973-12-27 | 1975-10-14 | Gen Electric | Dynamoelectric machine stator assembly with multi-barrel connection insulator |
US3993860A (en) * | 1975-08-18 | 1976-11-23 | Samuel Moore And Company | Electrical cable adapted for use on a tractor trailer |
US4008367A (en) * | 1974-06-24 | 1977-02-15 | Siemens Aktiengesellschaft | Power cable with plastic insulation and an outer conducting layer |
US4132914A (en) * | 1975-04-22 | 1979-01-02 | Khutoretsky Garri M | Six-phase winding of electric machine stator |
US4314168A (en) * | 1979-05-21 | 1982-02-02 | Kabel-Und Metallwerke Gutehoffnungshuette A.G. | Prefabricated stator windings |
US4321426A (en) * | 1978-06-09 | 1982-03-23 | General Electric Company | Bonded transposed transformer winding cable strands having improved short circuit withstand |
US4361723A (en) * | 1981-03-16 | 1982-11-30 | Harvey Hubbell Incorporated | Insulated high voltage cables |
US4365178A (en) * | 1981-06-08 | 1982-12-21 | General Electric Co. | Laminated rotor for a dynamoelectric machine with coolant passageways therein |
US4367890A (en) * | 1980-02-11 | 1983-01-11 | Siemens Aktiengesellschaft | Turbine set with a generator feeding a network of constant frequency |
US4384944A (en) * | 1980-09-18 | 1983-05-24 | Pirelli Cable Corporation | Carbon filled irradiation cross-linked polymeric insulation for electric cable |
US4401920A (en) * | 1981-05-11 | 1983-08-30 | Canadian Patents & Development Limited | Laser triggered high voltage rail gap switch |
US4432029A (en) * | 1981-07-06 | 1984-02-14 | Asea Aktiebolag | Protective means for series capacitors |
US4437464A (en) * | 1981-11-09 | 1984-03-20 | C.R. Bard, Inc. | Electrosurgical generator safety apparatus |
US4484106A (en) * | 1982-05-14 | 1984-11-20 | Canadian Patents & Development Limited | UV Radiation triggered rail-gap switch |
US4490651A (en) * | 1980-05-23 | 1984-12-25 | Canadian Patents & Development Limited | Laser triggered high voltage rail gap switch |
US4508251A (en) * | 1982-10-26 | 1985-04-02 | Nippon Telegraph And Telephone Public Corp. | Cable pulling/feeding apparatus |
US4520287A (en) * | 1981-10-27 | 1985-05-28 | Emerson Electric Co. | Stator for a multiple-pole dynamoelectric machine and method of fabricating same |
US4571453A (en) * | 1978-11-09 | 1986-02-18 | The Fujikura Cable Works, Limited | Conductor for an electrical power cable |
US4615778A (en) * | 1983-11-25 | 1986-10-07 | General Electric Company | Process for electrodepositing mica on coil or bar connections and resulting products |
US4622116A (en) * | 1983-11-25 | 1986-11-11 | General Electric Company | Process for electrodepositing mica on coil or bar connections and resulting products |
US4652963A (en) * | 1984-03-07 | 1987-03-24 | Asea Aktiebolag | Series capacitor equipment |
US4723083A (en) * | 1983-11-25 | 1988-02-02 | General Electric Company | Electrodeposited mica on coil bar connections and resulting products |
Family Cites Families (490)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
DE406371C (en) | 1924-11-21 | Bergmann Elek Citaets Werke Ak | Machine for the conversion or for the simultaneous generation of alternating currents of different frequencies with fields of different number of poles, which are expediently combined on an inductor, and induced windings assigned to these fields, possibly combined into a common winding | |
US295699A (en) | 1884-03-25 | Machine for cutting grain | ||
DE336418C (en) | 1921-05-02 | Stanislaus Berger | Support for electrical lines to be led on walls | |
DE425551C (en) | 1926-02-20 | Bbc Brown Boveri & Cie | Device for the magnetic closure of open slots in electrical machines | |
DE426793C (en) | 1926-03-18 | Bbc Brown Boveri & Cie | Device for the magnetic closure of open slots in electrical machines | |
DE435608C (en) | 1926-10-18 | Bbc Brown Boveri & Cie | Divided conductor for electrical machines | |
DE386561C (en) | 1923-12-13 | Bergmann Elek Citaets Werke Ak | Machine for the conversion or for the simultaneous generation of alternating currents of different frequencies | |
DE523047C (en) | 1931-04-18 | Brown Boveir & Cie Ag | Process for the production of slot wedges with iron sheets layered transversely to the longitudinal direction of the wedge for electrical machines | |
US1304451A (en) | 1919-05-20 | Locke h | ||
DE568508C (en) | 1933-01-20 | Bbc Brown Boveri & Cie | AC high-voltage generator with at least two electrically separate windings | |
DE572030C (en) | 1933-03-09 | Bbc Brown Boveri & Cie | Cooling device for the winding heads of high-voltage machines | |
US681800A (en) | 1901-06-18 | 1901-09-03 | Oskar Lasche | Stationary armature and inductor. |
US847008A (en) | 1904-06-10 | 1907-03-12 | Isidor Kitsee | Converter. |
DE372390C (en) | 1915-12-09 | 1923-03-27 | Bergmann Elek Citaets Werke Ak | Machine for the conversion or for the simultaneous generation of alternating currents of different frequencies with the same or different number of phases |
GB123906A (en) | 1918-05-31 | 1919-03-13 | Brush Electrical Eng | Improvements in or pertaining to Windings in Electrical Apparatus. |
US1418856A (en) | 1919-05-02 | 1922-06-06 | Allischalmers Mfg Company | Dynamo-electric machine |
DE443011C (en) | 1919-07-19 | 1927-04-13 | Bbc Brown Boveri & Cie | Installation on high-voltage windings in electrical machines |
US1481585A (en) | 1919-09-16 | 1924-01-22 | Electrical Improvements Ltd | Electric reactive winding |
DE387973C (en) | 1921-06-04 | 1924-01-09 | Hellmuth Beyer | Arrangement of the coils to reduce the leakage in transformers with a disc-like winding structure |
DE482506C (en) | 1921-07-09 | 1929-09-14 | Bbc Brown Boveri & Cie | Device for short-circuit-proof fastening of involute-shaped stator winding heads of air-cooled electrical machines |
DE460124C (en) | 1922-10-10 | 1928-05-22 | Bbc Brown Boveri & Cie | Laminated magnetic wedge to close the winding grooves of electrical machines |
US1756672A (en) | 1922-10-12 | 1930-04-29 | Allis Louis Co | Dynamo-electric machine |
DE433749C (en) | 1923-11-25 | 1926-09-07 | Bbc Brown Boveri & Cie | Coil winding of alternating current machines, which carry very strong currents, with ring-shaped connecting conductors |
DE432169C (en) | 1924-01-15 | 1926-07-26 | Bbc Brown Boveri & Cie | Device for the magnetic closure of open slots in electrical machines |
DE441717C (en) | 1924-03-02 | 1927-03-11 | Bbc Brown Boveri & Cie | Divided conductor for electrical machines |
DE435609C (en) | 1924-03-02 | 1926-10-18 | Bbc Brown Boveri & Cie | Divided conductor for electrical machines |
GB268271A (en) | 1926-06-12 | 1927-03-31 | Pirelli & C | Improvements in or relating to joints for high tension electric cables |
DE468827C (en) * | 1926-08-07 | 1928-11-23 | Friedrich Pfaffenberger | Inhaler |
DE501181C (en) | 1927-02-19 | 1930-07-03 | Felten & Guilleaume Carlswerk | Process for the manufacture of cables for electrical overhead lines |
GB292999A (en) | 1927-06-29 | 1929-04-11 | Siemens Ag | Arrangement of core segments in the casings of dynamo electric machines, rotary transformers and the like |
GB293861A (en) | 1927-07-15 | 1928-11-08 | Westinghouse Electric & Mfg Co | Improvements in or relating to radio coupling devices and conductors therefor |
US1728915A (en) | 1928-05-05 | 1929-09-24 | Earl P Blankenship | Line saver and restrainer for drilling cables |
US1781308A (en) | 1928-05-30 | 1930-11-11 | Ericsson Telefon Ab L M | High-frequency differential transformer |
US1762775A (en) | 1928-09-19 | 1930-06-10 | Bell Telephone Labor Inc | Inductance device |
GB319313A (en) | 1928-09-20 | 1929-07-18 | Siemens Ag | The regulation of the electric potential of long lines |
DE629301C (en) | 1929-02-28 | 1936-04-27 | Hartstoff Metall Akt Ges Hamet | Iron core for electrical machines |
US1747507A (en) | 1929-05-10 | 1930-02-18 | Westinghouse Electric & Mfg Co | Reactor structure |
US1742985A (en) | 1929-05-20 | 1930-01-07 | Gen Electric | Transformer |
DE584639C (en) | 1929-12-28 | 1933-09-27 | Aeg | Corona protection for windings in electrical machines |
US1861182A (en) | 1930-01-31 | 1932-05-31 | Okonite Co | Electric conductor |
US1974406A (en) | 1930-12-13 | 1934-09-25 | Herbert F Apple | Dynamo electric machine core slot lining |
DE604972C (en) | 1931-02-27 | 1934-10-12 | Otis Aufzugswerke Ges M B H | Door drive for elevators |
DE586121C (en) | 1932-05-01 | 1933-10-18 | Felix Kleiss Dipl Ing | Process for the implementation of wires and tapes through baths |
US2006170A (en) | 1933-05-11 | 1935-06-25 | Gen Electric | Winding for the stationary members of alternating current dynamo-electric machines |
DE719009C (en) | 1935-05-30 | 1942-03-26 | Aeg | Equipment for the operation of electrical rail feeders |
FR805544A (en) | 1936-04-29 | 1936-11-21 | Travail Electr Des Metaux Soc | Method and device for adjusting voltages in a static transformer |
DE673545C (en) | 1936-07-30 | 1939-03-24 | Siemens Schuckertwerke Akt Ges | Multiphase scatter transformer made up of single-phase transformers |
NL54036C (en) | 1937-09-15 | |||
FR847899A (en) | 1937-12-23 | 1939-10-18 | Lignes Telegraph Telephon | Transformer |
FR841351A (en) | 1938-01-19 | 1939-05-17 | Manufacturing process of laminated or divided magnetic circuits | |
US2217430A (en) | 1938-02-26 | 1940-10-08 | Westinghouse Electric & Mfg Co | Water-cooled stator for dynamoelectric machines |
US2206856A (en) | 1938-05-31 | 1940-07-02 | William E Shearer | Transformer |
US2305153A (en) | 1938-11-26 | 1942-12-15 | Fries Eduard | Adjustable transformer with high reactance |
FR864380A (en) | 1939-12-01 | 1941-04-25 | Entpr Chemin | Improvements to steam winches for piling piling and the like |
GB540456A (en) | 1940-04-17 | 1941-10-17 | Austin Walters & Son Ltd | Improvements in or relating to self-regulating electric transformers |
US2241832A (en) | 1940-05-07 | 1941-05-13 | Hugo W Wahlquist | Method and apparatus for reducing harmonics in power systems |
US2256897A (en) | 1940-07-24 | 1941-09-23 | Cons Edison Co New York Inc | Insulating joint for electric cable sheaths and method of making same |
US2295415A (en) | 1940-08-02 | 1942-09-08 | Westinghouse Electric & Mfg Co | Air-cooled, air-insulated transformer |
US2251291A (en) | 1940-08-10 | 1941-08-05 | Western Electric Co | Strand handling apparatus |
GB589071A (en) | 1942-03-27 | 1947-06-11 | Gen Electric Co Ltd | Improvements in protective shields in high-voltage apparatus |
US2415652A (en) | 1942-06-03 | 1947-02-11 | Kerite Company | High-voltage cable |
US2462651A (en) | 1944-06-12 | 1949-02-22 | Gen Electric | Electric induction apparatus |
DE975999C (en) | 1944-09-16 | 1963-01-10 | Siemens Ag | Method and device for the operation of single-phase railway contact lines that are fed from at least two feed points |
US2424443A (en) | 1944-12-06 | 1947-07-22 | Gen Electric | Dynamoelectric machine |
US2459322A (en) | 1945-03-16 | 1949-01-18 | Allis Chalmers Mfg Co | Stationary induction apparatus |
US2436306A (en) | 1945-06-16 | 1948-02-17 | Westinghouse Electric Corp | Corona elimination in generator end windings |
FR916959A (en) | 1945-07-03 | 1946-12-20 | Improvements to transformers for electrical welding and similar applications | |
US2446999A (en) | 1945-11-07 | 1948-08-17 | Gen Electric | Magnetic core |
US2498238A (en) | 1947-04-30 | 1950-02-21 | Westinghouse Electric Corp | Resistance compositions and products thereof |
NL143510B (en) | 1947-12-04 | Wiese Hans Holger | BUCKET TRANSPORTER. | |
CH266037A (en) | 1948-02-13 | 1950-01-15 | Sip Karel | Collapsible ladder. |
DE875227C (en) | 1948-12-31 | 1953-04-30 | Siemens Ag | Rotary field machine with concentrated windings and pronounced poles with pole pieces |
DE846583C (en) | 1949-02-18 | 1952-08-14 | Siemens Ag | Iron core for electrical devices, especially transformers, chokes or the like. |
US2721905A (en) | 1949-03-04 | 1955-10-25 | Webster Electric Co Inc | Transducer |
FR1011924A (en) | 1949-04-23 | 1952-07-01 | Improvements to rotating electrical machines | |
GB685416A (en) | 1950-04-08 | 1953-01-07 | Westinghouse Electric Int Co | Improvements in or relating to stationary electrical induction apparatus |
DE1638176U (en) | 1952-02-12 | 1952-05-15 | Bosch & Speidel | CUFF FOR BLOOD PRESSURE MEASUREMENT. |
GB702892A (en) | 1952-02-14 | 1954-01-27 | Asea Ab | Electric railway system |
GB715226A (en) | 1952-04-07 | 1954-09-08 | Dowty Equipment Ltd | Improvements relating to electro-magnetic coils |
GB723457A (en) | 1952-07-07 | 1955-02-09 | Standard Telephones Cables Ltd | Joint for an electric cable |
GB739962A (en) | 1953-03-23 | 1955-11-02 | Standard Telephones Cables Ltd | Improvements in coaxial conductor electric cables |
BE534972A (en) | 1953-03-23 | |||
US2780771A (en) | 1953-04-21 | 1957-02-05 | Vickers Inc | Magnetic amplifier |
NL195374A (en) | 1954-03-11 | |||
GB827600A (en) | 1954-12-13 | 1960-02-10 | Shiro Sasaki | Electric transformers and the like |
US2962679A (en) | 1955-07-25 | 1960-11-29 | Gen Electric | Coaxial core inductive structures |
GB805721A (en) | 1955-10-29 | 1958-12-10 | Comp Generale Electricite | Improvements in or relating to three-phase magnetic circuits |
US2846599A (en) | 1956-01-23 | 1958-08-05 | Wetomore Hodges | Electric motor components and the like and method for making the same |
US2947957A (en) | 1957-04-22 | 1960-08-02 | Zenith Radio Corp | Transformers |
US2885581A (en) | 1957-04-29 | 1959-05-05 | Gen Electric | Arrangement for preventing displacement of stator end turns |
CA635218A (en) | 1958-01-02 | 1962-01-23 | W. Smith John | Reinforced end turns in dynamoelectric machines |
US2943242A (en) | 1958-02-05 | 1960-06-28 | Pure Oil Co | Anti-static grounding device |
US2975309A (en) | 1958-07-18 | 1961-03-14 | Komplex Nagyberendezesek Expor | Oil-cooled stators for turboalternators |
GB854728A (en) | 1958-09-29 | 1960-11-23 | British Thomson Houston Co Ltd | Improvements relating to electrical transformers |
GB870583A (en) | 1958-12-01 | 1961-06-14 | Okonite Co | Method of making electric cables |
FR1238795A (en) | 1959-07-06 | 1960-08-19 | Fournitures Pour L Electrolyse | Improvements to electrical transformers |
DE1807391U (en) | 1959-08-29 | 1960-03-03 | Heinrich Ungruhe | BASE RING FOR FITING STRAP. |
CH395369A (en) | 1959-09-18 | 1965-07-15 | Asea Ab | Corona shield on an induction coil provided with insulation in a vacuum furnace and method for producing a corona shield |
US3157806A (en) | 1959-11-05 | 1964-11-17 | Bbc Brown Boveri & Cie | Synchronous machine with salient poles |
US3158770A (en) | 1960-12-14 | 1964-11-24 | Gen Electric | Armature bar vibration damping arrangement |
US3098893A (en) | 1961-03-30 | 1963-07-23 | Gen Electric | Low electrical resistance composition and cable made therefrom |
US3130335A (en) | 1961-04-17 | 1964-04-21 | Epoxylite Corp | Dynamo-electric machine |
GB992249A (en) | 1961-08-23 | 1965-05-19 | Urho Leander Wertanen | Electrical impedance devices |
GB1024583A (en) | 1961-10-26 | 1966-03-30 | Ass Elect Ind | Improvements in and relating to electric transformers |
US3143269A (en) | 1961-11-29 | 1964-08-04 | Crompton & Knowles Corp | Tractor-type stock feed |
CH391071A (en) | 1962-03-01 | 1965-04-30 | Bbc Brown Boveri & Cie | Laminated stator bodies for electrical machines, in particular turbo generators |
GB965741A (en) | 1962-03-02 | 1964-08-06 | Core Mfg Company | Transformer core |
SE305899B (en) | 1962-06-15 | 1968-11-11 | O Andersson | |
NL297703A (en) | 1962-09-25 | |||
DE1465719A1 (en) | 1963-03-15 | 1969-05-22 | Ibm | Transformer cables with multiple coaxial conductors and their method of manufacture |
US3268766A (en) | 1964-02-04 | 1966-08-23 | Du Pont | Apparatus for removal of electric charges from dielectric film surfaces |
US3372283A (en) | 1965-02-15 | 1968-03-05 | Ampex | Attenuation control device |
SE318939B (en) | 1965-03-17 | 1969-12-22 | Asea Ab | |
US3304599A (en) | 1965-03-30 | 1967-02-21 | Teletype Corp | Method of manufacturing an electromagnet having a u-shaped core |
US3333044A (en) | 1965-04-23 | 1967-07-25 | William A Toto | Passageway structure for liquid coolant at gun and transformer ends of welding cable having novel internal surface bearing for alternate polarity strands |
CA812934A (en) | 1965-07-19 | 1969-05-13 | Cuny Robert | Rotary transformer for coupling multi-phase systems having a small frequency difference |
GB1135242A (en) | 1965-09-13 | 1968-12-04 | Ass Elect Ind | Improvements in or relating to packing means for conductors in stator slots of dynamo-electric machines |
US3365657A (en) | 1966-03-04 | 1968-01-23 | Nasa Usa | Power supply |
GB1117433A (en) | 1966-06-07 | 1968-06-19 | English Electric Co Ltd | Improvements in alternating current generators |
GB1103099A (en) | 1966-06-24 | 1968-02-14 | Phelps Dodge Copper Prod | Improvements in or relating to shielded electric cable |
GB1103098A (en) | 1966-06-24 | 1968-02-14 | Phelps Dodge Copper Prod | Improvements in or relating to shielded electric cable |
US3444407A (en) | 1966-07-20 | 1969-05-13 | Gen Electric | Rigid conductor bars in dynamoelectric machine slots |
US3484690A (en) | 1966-08-23 | 1969-12-16 | Herman Wald | Three current winding single stator network meter for 3-wire 120/208 volt service |
US3418530A (en) | 1966-09-07 | 1968-12-24 | Army Usa | Electronic crowbar |
US3354331A (en) | 1966-09-26 | 1967-11-21 | Gen Electric | High voltage grading for dynamoelectric machine |
GB1147049A (en) | 1966-09-28 | 1969-04-02 | Parsons C A & Co Ltd | Improvements in and relating to transformer windings |
US3437858A (en) | 1966-11-17 | 1969-04-08 | Glastic Corp | Slot wedge for electric motors or generators |
AT272436B (en) | 1967-04-10 | 1969-07-10 | Peter Dipl Ing Dr Techn Klaudy | Method of overload protection using superconductors |
GB1174659A (en) | 1967-04-21 | 1969-12-17 | Elektromat Veb | Mechanism for Inserting Coils into Grooves of the Stators of Electric Machines |
GB1226451A (en) | 1968-03-15 | 1971-03-31 | ||
CH479975A (en) | 1968-08-19 | 1969-10-15 | Oerlikon Maschf | Head bandage for an electrical machine |
GB1268770A (en) | 1968-11-21 | 1972-03-29 | Kenneth Grundy | Electrical connector |
US3651402A (en) | 1969-01-27 | 1972-03-21 | Honeywell Inc | Supervisory apparatus |
SE326758B (en) | 1969-10-29 | 1970-08-03 | Asea Ab | |
US3614692A (en) | 1970-06-02 | 1971-10-19 | Magnetech Ind Inc | Variable induction device |
FR2108171A1 (en) | 1970-09-29 | 1972-05-19 | Sumitomo Electric Industries | Insulated electric cable - incorporating an insulating layer and an easily strippable semiconductor layer |
DE2050312A1 (en) | 1970-10-13 | 1972-04-20 | Siemens Ag | Multiple choke with damping of symmetrical interference currents |
US3631519A (en) | 1970-12-21 | 1971-12-28 | Gen Electric | Stress graded cable termination |
US3675056A (en) | 1971-01-04 | 1972-07-04 | Gen Electric | Hermetically sealed dynamoelectric machine |
US3644662A (en) | 1971-01-11 | 1972-02-22 | Gen Electric | Stress cascade-graded cable termination |
GB1395152A (en) | 1971-02-01 | 1975-05-21 | Int Research & Dev Co Ltd | Altering current dynamo-electric machine windings |
DE2111086A1 (en) | 1971-03-09 | 1972-09-14 | Siemens Ag | Stand sheet metal cutting of electrical machines |
GB1340983A (en) | 1971-03-10 | 1973-12-19 | Siemens Ag | Superconductor cables |
US3684821A (en) | 1971-03-30 | 1972-08-15 | Sumitomo Electric Industries | High voltage insulated electric cable having outer semiconductive layer |
US3716719A (en) | 1971-06-07 | 1973-02-13 | Aerco Corp | Modulated output transformers |
JPS4831403A (en) | 1971-08-27 | 1973-04-25 | ||
US3746954A (en) | 1971-09-17 | 1973-07-17 | Sqare D Co | Adjustable voltage thyristor-controlled hoist control for a dc motor |
US3727085A (en) | 1971-09-30 | 1973-04-10 | Gen Dynamics Corp | Electric motor with facility for liquid cooling |
DE2155371C2 (en) | 1971-11-08 | 1982-06-24 | Appt, geb. Kirschmann, Emma, 7000 Stuttgart | Device for shaping the winding heads of electrical machines |
US3740600A (en) | 1971-12-12 | 1973-06-19 | Gen Electric | Self-supporting coil brace |
DE2164078A1 (en) | 1971-12-23 | 1973-06-28 | Siemens Ag | DRIVE ARRANGEMENT WITH A LINEAR MOTOR DESIGNED IN THE TYPE OF A SYNCHRONOUS MACHINE |
BE793731A (en) | 1972-01-05 | 1973-05-02 | English Electric Co Ltd | ELECTROGENERATORS |
SU425268A1 (en) | 1972-02-29 | 1974-04-25 | желого электромашиностроени при Лысьвенском турбогенераторном | ELECTRIC MACHINE STATOR |
FR2175579B1 (en) | 1972-03-14 | 1974-08-02 | Thomson Brandt | |
US3758699A (en) | 1972-03-15 | 1973-09-11 | G & W Electric Speciality Co | Apparatus and method for dynamically cooling a cable termination |
US3716652A (en) | 1972-04-18 | 1973-02-13 | G & W Electric Speciality Co | System for dynamically cooling a high voltage cable termination |
US3748555A (en) | 1972-05-01 | 1973-07-24 | Westinghouse Electric Corp | Protective circuit for brushless synchronous motors |
US3968388A (en) | 1972-06-14 | 1976-07-06 | Kraftwerk Union Aktiengesellschaft | Electric machines, particularly turbogenerators, having liquid cooled rotors |
CH547028A (en) | 1972-06-16 | 1974-03-15 | Bbc Brown Boveri & Cie | GLIME PROTECTION FILM, THE PROCESS FOR ITS MANUFACTURING AND THEIR USE IN HIGH VOLTAGE WINDINGS. |
US3801843A (en) | 1972-06-16 | 1974-04-02 | Gen Electric | Rotating electrical machine having rotor and stator cooled by means of heat pipes |
US3792399A (en) | 1972-08-28 | 1974-02-12 | Nasa | Banded transformer cores |
US3778891A (en) | 1972-10-30 | 1973-12-18 | Westinghouse Electric Corp | Method of securing dynamoelectric machine coils by slot wedge and filler locking means |
US3932791A (en) | 1973-01-22 | 1976-01-13 | Oswald Joseph V | Multi-range, high-speed A.C. over-current protection means including a static switch |
US3995785A (en) | 1973-02-12 | 1976-12-07 | Essex International, Inc. | Apparatus and method for forming dynamoelectric machine field windings by pushing |
CA1028440A (en) | 1973-02-26 | 1978-03-21 | Uop Inc. | Polymer compositions with treated filler |
FR2222738B1 (en) | 1973-03-20 | 1976-05-21 | Unelec | |
SE371348B (en) | 1973-03-22 | 1974-11-11 | Asea Ab | |
US3781739A (en) | 1973-03-28 | 1973-12-25 | Westinghouse Electric Corp | Interleaved winding for electrical inductive apparatus |
CH549467A (en) | 1973-03-29 | 1974-05-31 | Micafil Ag | PROCESS FOR MANUFACTURING A COMPRESSED LAYERING MATERIAL. |
US3881647A (en) | 1973-04-30 | 1975-05-06 | Lebus International Inc | Anti-slack line handling device |
CH560448A5 (en) * | 1973-07-06 | 1975-03-27 | Bbc Brown Boveri & Cie | |
US4084307A (en) | 1973-07-11 | 1978-04-18 | Allmanna Svenska Elektriska Aktiebolaget | Method of joining two cables with an insulation of cross-linked polyethylene or another cross linked linear polymer |
DE2351340A1 (en) | 1973-10-12 | 1975-04-24 | Siemens Ag | TAPE REEL FOR TRANSFORMERS |
GB1433158A (en) | 1973-11-19 | 1976-04-22 | Pirelli General Cable Works | Electric cable installations |
US3947278A (en) | 1973-12-19 | 1976-03-30 | Universal Oil Products Company | Duplex resistor inks |
DE2400698A1 (en) | 1974-01-08 | 1975-07-10 | Krim Samhalov Izmail | Self-excited machine with two separate stator windings - windings star-connected with second capacitively closed for excitation |
US4109098A (en) * | 1974-01-31 | 1978-08-22 | Telefonaktiebolaget L M Ericsson | High voltage cable |
SE384420B (en) | 1974-01-31 | 1976-05-03 | Ericsson Telefon Ab L M | ELECTRICAL CABLE WITH SYNTHETIC INSULATION AND AN OUTER SEMICONDUCTIVE LAYER |
CA1016586A (en) | 1974-02-18 | 1977-08-30 | Hubert G. Panter | Grounding of outer winding insulation to cores in dynamoelectric machines |
US4039740A (en) | 1974-06-19 | 1977-08-02 | The Furukawa Electric Co., Ltd. | Cryogenic power cable |
GB1525745A (en) | 1974-09-19 | 1978-09-20 | Matsushita Electric Ind Co Ltd | Synthetic resin encapsulated coil assembly |
GB1479904A (en) | 1974-10-15 | 1977-07-13 | Ass Elect Ind | Alternating current power transmission systems |
US3902000A (en) | 1974-11-12 | 1975-08-26 | Us Energy | Termination for superconducting power transmission systems |
US3943392A (en) | 1974-11-27 | 1976-03-09 | Allis-Chalmers Corporation | Combination slot liner and retainer for dynamoelectric machine conductor bars |
CH579844A5 (en) * | 1974-12-04 | 1976-09-15 | Bbc Brown Boveri & Cie | |
US3965408A (en) | 1974-12-16 | 1976-06-22 | International Business Machines Corporation | Controlled ferroresonant transformer regulated power supply |
DE2600206C2 (en) | 1975-01-06 | 1986-01-09 | The Reluxtrol Co., Seattle, Wash. | Device for non-destructive material testing using the eddy current method |
US4091138A (en) | 1975-02-12 | 1978-05-23 | Sumitomo Bakelite Company Limited | Insulating film, sheet, or plate material with metallic coating and method for manufacturing same |
AT338915B (en) | 1975-02-18 | 1977-09-26 | Dukshtau Alexandr Antonovich | STAND FOR ELECTRIC MACHINERY |
JPS51113110A (en) | 1975-03-28 | 1976-10-06 | Mitsubishi Electric Corp | Drive system for inductor type synchronous motor |
US4008409A (en) | 1975-04-09 | 1977-02-15 | General Electric Company | Dynamoelectric machine core and coil assembly |
US3971543A (en) | 1975-04-17 | 1976-07-27 | Shanahan William F | Tool and kit for electrical fishing |
DE2520511C3 (en) | 1975-05-07 | 1978-11-30 | Siemens Ag, 1000 Berlin Und 8000 Muenchen | Device for supporting the rotor winding of a salient pole rotor of a four-pole or higher-pole electrical machine |
ZA753046B (en) | 1975-05-12 | 1976-09-29 | Gec South Africa Pty | Transformer cooling |
SE7605754L (en) | 1975-05-22 | 1976-11-23 | Reynolds Metals Co | ELECTRICAL CABLE |
US4031310A (en) | 1975-06-13 | 1977-06-21 | General Cable Corporation | Shrinkable electrical cable core for cryogenic cable |
US4091139A (en) | 1975-09-17 | 1978-05-23 | Westinghouse Electric Corp. | Semiconductor binding tape and an electrical member wrapped therewith |
US4258280A (en) | 1975-11-07 | 1981-03-24 | Bbc Brown Boveri & Company Limited | Supporting structure for slow speed large diameter electrical machines |
US4085347A (en) | 1976-01-16 | 1978-04-18 | White-Westinghouse Corporation | Laminated stator core |
AT340523B (en) | 1976-04-27 | 1977-12-27 | Hitzinger & Co Dipl Ing | BRUSHLESS SYNC GENERATOR |
HU175494B (en) | 1976-04-29 | 1980-08-28 | Magyar Kabel Muevek | Shielded power-current cable |
US4047138A (en) | 1976-05-19 | 1977-09-06 | General Electric Company | Power inductor and transformer with low acoustic noise air gap |
DE2622309C3 (en) | 1976-05-19 | 1979-05-03 | Siemens Ag, 1000 Berlin Und 8000 Muenchen | Protective device for a brushless synchronous machine |
JPS5325886A (en) | 1976-08-21 | 1978-03-10 | Sumitomo Electric Ind Ltd | Brid ged polyolefine insulating hightension cable having outer semiconductor layers which can be treated off easily |
US4064419A (en) | 1976-10-08 | 1977-12-20 | Westinghouse Electric Corporation | Synchronous motor KVAR regulation system |
US4103075A (en) | 1976-10-28 | 1978-07-25 | Airco, Inc. | Composite monolithic low-loss superconductor for power transmission line |
US4041431A (en) | 1976-11-22 | 1977-08-09 | Ralph Ogden | Input line voltage compensating transformer power regulator |
SU625290A1 (en) | 1976-11-30 | 1978-09-25 | Специальное Конструкторское Бюро "Энергохиммаш" | Electric motor |
US4099227A (en) | 1976-12-01 | 1978-07-04 | Square D Company | Sensor circuit |
DE2656389C3 (en) | 1976-12-13 | 1979-11-29 | Siemens Ag, 1000 Berlin Und 8000 Muenchen | Synchronous linear motor |
FR2376542A1 (en) | 1976-12-30 | 1978-07-28 | Aroshidze Jury | Spring mounted stator core of electrical machine - is attached to stator frame at points of maximum stiffness to form rigid structure |
US4200817A (en) | 1977-01-20 | 1980-04-29 | Bbc Brown Boveri & Company Limited | Δ-Connected, two-layer, three-phase winding for an electrical machine |
IT1113513B (en) | 1977-03-16 | 1986-01-20 | Pirelli | IMPROVEMENT CONCERNING THE CABLES FOR ENERGY |
JPS53120117A (en) | 1977-03-30 | 1978-10-20 | Hitachi Ltd | Excitation control system for generator |
US4149101A (en) | 1977-05-12 | 1979-04-10 | Lesokhin Albert Z | Arrangement for locking slot wedges retaining electric windings |
DE2721905C2 (en) | 1977-05-14 | 1986-02-20 | Thyssen Industrie Ag, 4300 Essen | Method of manufacturing a three-phase alternating current winding for a linear motor |
US4134036A (en) | 1977-06-03 | 1979-01-09 | Cooper Industries, Inc. | Motor mounting device |
US4152615A (en) | 1977-06-14 | 1979-05-01 | Westinghouse Electric Corp. | End iron axial flux damper system |
DE2729067A1 (en) | 1977-06-28 | 1979-01-11 | Kabel Metallwerke Ghh | MEDIUM OR HIGH VOLTAGE ELECTRIC CABLE |
US4177418A (en) | 1977-08-04 | 1979-12-04 | International Business Machines Corporation | Flux controlled shunt regulated transformer |
US4164672A (en) | 1977-08-18 | 1979-08-14 | Electric Power Research Institute, Inc. | Cooling and insulating system for extra high voltage electrical machine with a spiral winding |
US4184186A (en) | 1977-09-06 | 1980-01-15 | General Electric Company | Current limiting device for an electric power system |
US4160193A (en) | 1977-11-17 | 1979-07-03 | Richmond Abraham W | Metal vapor electric discharge lamp system |
PL123224B1 (en) | 1977-11-30 | 1982-09-30 | Inst Spawalnictwa | Welding transformer of dropping external characteristic |
US4134146A (en) | 1978-02-09 | 1979-01-09 | General Electric Company | Surge arrester gap assembly |
US4177397A (en) | 1978-03-17 | 1979-12-04 | Amp Incorporated | Electrical connections for windings of motor stators |
SU792302A1 (en) | 1978-04-04 | 1980-12-30 | Предприятие П/Я В-8833 | Transformer |
US4164772A (en) | 1978-04-17 | 1979-08-14 | Electric Power Research Institute, Inc. | AC fault current limiting circuit |
DE2824951A1 (en) | 1978-06-07 | 1979-12-20 | Kabel Metallwerke Ghh | METHOD OF MANUFACTURING A STATOR FOR A LINEAR MOTOR |
CH629344A5 (en) | 1978-06-08 | 1982-04-15 | Bbc Brown Boveri & Cie | DEVICE FOR SUPPORTING THE FIELD DEVELOPMENT OF A POLE WHEEL WITH EXCELLENT POLES. |
SU694939A1 (en) | 1978-06-22 | 1982-01-07 | Научно-Исследовательский Сектор Всесоюзного Ордена Ленина Проектно-Изыскательского И Научно-Исследовательского Института "Гидропроект" Им.С.Я.Жука | Generator stator |
US4208597A (en) | 1978-06-22 | 1980-06-17 | Westinghouse Electric Corp. | Stator core cooling for dynamoelectric machines |
DE2925934A1 (en) | 1978-07-06 | 1980-01-24 | Vilanova Luis Montplet | MAGNETIC DEVICE, IN PARTICULAR FOR DETECTING FAULTS OF UNDERGROUND ELECTRIC CABLES |
US4200818A (en) | 1978-08-01 | 1980-04-29 | Westinghouse Electric Corp. | Resin impregnated aromatic polyamide covered glass based slot wedge for large dynamoelectric machines |
DE2835386A1 (en) | 1978-08-12 | 1980-02-21 | Kabel Metallwerke Ghh | Three=phase AC winding for linear motor - is made by preforming cables which are wound on drum, fastened on supports and then placed in slots |
DE2836229C2 (en) | 1978-08-17 | 1983-12-15 | Siemens AG, 1000 Berlin und 8000 München | Stator winding of an electrical machine |
CA1095601A (en) | 1978-08-28 | 1981-02-10 | Alfred M. Hase | Regulating transformer with magnetic shunt |
DE2839517C2 (en) | 1978-09-11 | 1986-05-07 | Thyssen Industrie Ag, 4300 Essen | Process for the production of a prefabricated winding for linear motors |
JPS6028226B2 (en) | 1978-09-20 | 1985-07-03 | 株式会社日立製作所 | salient pole rotor |
US4207482A (en) | 1978-11-14 | 1980-06-10 | Westinghouse Electric Corp. | Multilayered high voltage grading system for electrical conductors |
US4238339A (en) | 1978-11-27 | 1980-12-09 | Fridman Vladimir M | Arrangement for supporting stator end windings of an electric machine |
JPS5579676A (en) | 1978-12-13 | 1980-06-16 | Toshiba Corp | Harmonic filter for electric power |
DE2854520A1 (en) | 1978-12-16 | 1980-06-26 | Bbc Brown Boveri & Cie | ELECTRIC COIL |
CH651975A5 (en) | 1979-01-10 | 1985-10-15 | Bbc Brown Boveri & Cie | PROTECTIVE DEVICE ON A TURBO GROUP AGAINST SUBSYNCHRONOUS RESONANCES. |
US4317001A (en) | 1979-02-23 | 1982-02-23 | Pirelli Cable Corp. | Irradiation cross-linked polymeric insulated electric cable |
US4262209A (en) * | 1979-02-26 | 1981-04-14 | Berner Charles A | Supplemental electrical power generating system |
US4281264A (en) | 1979-02-26 | 1981-07-28 | General Electric Company | Mounting of armature conductors in air-gap armatures |
SE416693B (en) | 1979-03-08 | 1981-01-26 | Elmekano I Lulea Ab | DEVICE FOR PHASE COMPENSATION AND MAGNETIZATION OF AN ASYNCHRONIC MACHINE FOR OPERATING AS GENERATOR |
SU873370A1 (en) | 1979-03-11 | 1981-10-15 | Предприятие П/Я М-5113 | Synchronous machine excitation system |
FR2452167A1 (en) | 1979-03-20 | 1980-10-17 | Aerospatiale | PROCESS FOR THE PRODUCTION OF A MAGNETIC FRAME WITH DIVIDED STRUCTURE AND REINFORCEMENT THUS OBTAINED |
GB2045626B (en) | 1979-03-22 | 1983-05-25 | Oriental Metal Seizo Co | Process and apparatus for the distillation of water |
CH641599A5 (en) | 1979-03-27 | 1984-02-29 | Streiff Mathias Ag | METHOD AND DEVICE FOR LAYING AND FASTENING HEAVY ELECTRIC CABLES IN A CABLE CHANNEL. |
DE2913697C2 (en) | 1979-04-05 | 1986-05-22 | kabelmetal electro GmbH, 3000 Hannover | Prefabricated winding for a linear motor |
DE2917717A1 (en) | 1979-05-02 | 1980-11-27 | Kraftwerk Union Ag | Turbogenerator stator cooling segments - have parallel channels extending from to distributor to zone of stator teeth |
DE2920478C2 (en) | 1979-05-21 | 1986-06-26 | kabelmetal electro GmbH, 3000 Hannover | Prefabricated three-phase alternating current winding for a linear motor |
DE2921114A1 (en) | 1979-05-25 | 1980-12-04 | Bosch Gmbh Robert | WINDING PROCESS FOR AN ELECTRIC GENERATOR AND THREE-PHASE GENERATOR PRODUCED AFTER THIS |
US4357542A (en) | 1979-07-12 | 1982-11-02 | Westinghouse Electric Corp. | Wind turbine generator system |
US4255684A (en) | 1979-08-03 | 1981-03-10 | Mischler William R | Laminated motor stator structure with molded composite pole pieces |
US4292558A (en) | 1979-08-15 | 1981-09-29 | Westinghouse Electric Corp. | Support structure for dynamoelectric machine stators spiral pancake winding |
DE2939004A1 (en) | 1979-09-26 | 1981-04-09 | Siemens AG, 1000 Berlin und 8000 München | Synchronous linear motor for rail vehicle drive - has field winding divided into switched sections with inter-looped current lines |
US4320645A (en) | 1979-10-11 | 1982-03-23 | Card-O-Matic Pty. Limited | Apparatus for fabricating electrical equipment |
FR2467502A1 (en) | 1979-10-11 | 1981-04-17 | Ducellier & Cie | Electric starter motor rotor winding for vehicle - has minimal depth slots with offset conductors to minimise flux distortion |
JPS5675411U (en) | 1979-11-15 | 1981-06-19 | ||
SU961048A1 (en) * | 1979-12-06 | 1982-09-23 | Научно-Исследовательский Сектор Всесоюзного Ордена Ленина Проектно-Изыскательского И Научно-Исследовательского Института "Гидропроект" Им.С.Я.Жука | Generator stator |
DE3002945A1 (en) | 1980-01-29 | 1981-07-30 | Anton Piller Kg, 3360 Osterode | TRANSFORMER SYSTEM |
DE3006382C2 (en) | 1980-02-21 | 1985-10-31 | Thyssen Industrie Ag, 4300 Essen | Three-phase alternating current winding for a linear motor |
DE3008212C2 (en) | 1980-03-04 | 1985-06-27 | Robert Bosch Gmbh, 7000 Stuttgart | Process for the production of stator windings for three-phase alternators |
DE3008818A1 (en) | 1980-03-05 | 1981-09-10 | Siemens AG, 1000 Berlin und 8000 München | Jointing sleeve for HT cables - with plastic cylinder over metal tube and insulating tape wraps |
WO1981002945A1 (en) | 1980-04-03 | 1981-10-15 | Fujikura Ltd | Process for manufacturing stranded conductor comprising insulated conductor strands |
FR2481531A1 (en) | 1980-04-23 | 1981-10-30 | Cables De Lyon Geoffroy Delore | SPLICING METHOD AND SPLICE FOR COAXIAL CABLE WITH MASSIVE INSULATION |
DE3016990A1 (en) | 1980-05-02 | 1981-11-12 | Kraftwerk Union AG, 4330 Mülheim | DEVICE FOR FIXING WINDING RODS IN SLOTS OF ELECTRICAL MACHINES, IN PARTICULAR TURBOGENERATORS |
US4594630A (en) | 1980-06-02 | 1986-06-10 | Electric Power Research Institute, Inc. | Emission controlled current limiter for use in electric power transmission and distribution |
US4353612A (en) | 1980-06-06 | 1982-10-12 | The National Telephone Supply Company | Shield connector |
DE3031866A1 (en) | 1980-08-23 | 1982-04-01 | Brown, Boveri & Cie Ag, 6800 Mannheim | LADDER BAR FOR ELECTRICAL MACHINE |
US4330726A (en) * | 1980-12-04 | 1982-05-18 | General Electric Company | Air-gap winding stator construction for dynamoelectric machine |
JPS57502245A (en) | 1980-12-18 | 1982-12-16 | ||
US4404486A (en) | 1980-12-24 | 1983-09-13 | General Electric Company | Star connected air gap polyphase armature having limited voltage gradients at phase boundaries |
DE3101217C2 (en) | 1981-01-16 | 1984-08-23 | Smit Transformatoren B.V., Nijmegen | Winding for a dry-type transformer with spacer arrangement |
AT378287B (en) | 1981-01-30 | 1985-07-10 | Elin Union Ag | HIGH VOLTAGE WINDING FOR ELECTRICAL MACHINES |
SU955369A1 (en) | 1981-03-26 | 1982-08-30 | Научно-Исследовательский Сектор Всесоюзного Ордена Ленина Проектно-Изыскательского И Научно-Исследовательского Института "Гидропроект" Им.С.Я.Жука | Electric machine stator |
US4368418A (en) | 1981-04-21 | 1983-01-11 | Power Technologies, Inc. | Apparatus for controlling high voltage by absorption of capacitive vars |
GB2099635B (en) | 1981-05-29 | 1985-07-03 | Harmer & Simmons Ltd | Ransformers for battery charging systems |
US4367425A (en) | 1981-06-01 | 1983-01-04 | Westinghouse Electric Corp. | Impregnated high voltage spacers for use with resin filled hose bracing systems |
US4449768A (en) | 1981-07-23 | 1984-05-22 | Preformed Line Products Company | Shield connector |
AU557924B2 (en) | 1981-07-28 | 1987-01-15 | Pirelli General Plc | Heat shielding electric cables |
DE3129928A1 (en) | 1981-07-29 | 1983-02-24 | Anton Piller GmbH & Co KG, 3360 Osterode | ROTATING TRANSFORMER |
US4470884A (en) | 1981-08-07 | 1984-09-11 | National Ano-Wire, Inc. | High speed aluminum wire anodizing machine and process |
CA1164851A (en) | 1981-08-17 | 1984-04-03 | Ali Pan | Reeling of cable |
US4368399A (en) | 1981-08-17 | 1983-01-11 | Westinghouse Electric Corp. | Rotor end turn winding and support structure |
US4387316A (en) | 1981-09-30 | 1983-06-07 | General Electric Company | Dynamoelectric machine stator wedges and method |
US4475075A (en) | 1981-10-14 | 1984-10-02 | Munn Robert B | Electric power generator and system |
US4426771A (en) | 1981-10-27 | 1984-01-24 | Emerson Electric Co. | Method of fabricating a stator for a multiple-pole dynamoelectric machine |
US4431960A (en) | 1981-11-06 | 1984-02-14 | Fdx Patents Holding Company, N.V. | Current amplifying apparatus |
US4469267A (en) | 1982-01-15 | 1984-09-04 | Western Gear Corporation | Draw-off and hold-back cable tension machine |
SU1019553A1 (en) | 1982-02-23 | 1983-05-23 | Харьковский Ордена Ленина Авиационный Институт Им.Н.Е.Жуковского | Electric machine stator |
US4425521A (en) | 1982-06-03 | 1984-01-10 | General Electric Company | Magnetic slot wedge with low average permeability and high mechanical strength |
US4546210A (en) | 1982-06-07 | 1985-10-08 | Hitachi, Ltd. | Litz wire |
US4443725A (en) | 1982-06-14 | 1984-04-17 | General Electric Company | Dynamoelectric machine stator wedge |
JPS5928852A (en) | 1982-08-06 | 1984-02-15 | Hitachi Ltd | Salient-pole type rotary electric machine |
DE3229480A1 (en) | 1982-08-06 | 1984-02-09 | Transformatoren Union Ag, 7000 Stuttgart | DRY TRANSFORMER WITH WINDINGS POOLED IN CAST RESIN |
US4481438A (en) | 1982-09-13 | 1984-11-06 | Electric Power Research Institute, Inc. | High voltage electrical generator and windings for use therein |
JPS5956825A (en) | 1982-09-21 | 1984-04-02 | 三菱電機株式会社 | Ac current limiting device |
US4473765A (en) | 1982-09-30 | 1984-09-25 | General Electric Company | Electrostatic grading layer for the surface of an electrical insulation exposed to high electrical stress |
JPS5986110A (en) | 1982-11-09 | 1984-05-18 | 住友電気工業株式会社 | Crosslinked polyethylene insulated cable |
GB2140195B (en) | 1982-12-03 | 1986-04-30 | Electric Power Res Inst | Cryogenic cable and method of making same |
CH659910A5 (en) | 1983-01-27 | 1987-02-27 | Bbc Brown Boveri & Cie | AIR THROTTLE COIL AND METHOD FOR THEIR PRODUCTION. |
DE3305225A1 (en) | 1983-02-16 | 1984-08-16 | BBC Aktiengesellschaft Brown, Boveri & Cie., Baden, Aargau | High-voltage DC-transmission power station in a block circuit |
GB2136214B (en) | 1983-03-11 | 1986-05-29 | British Aerospace | Pulse transformer |
DE3309051C2 (en) | 1983-03-14 | 1986-10-02 | Thyssen Industrie Ag, 4300 Essen | Three-phase alternating current winding for a linear motor |
EP0120154A1 (en) * | 1983-03-25 | 1984-10-03 | TRENCH ELECTRIC, a Division of Guthrie Canadian Investments Limited | Continuously transposed conductor |
US4619040A (en) | 1983-05-23 | 1986-10-28 | Emerson Electric Co. | Method of fabricating stator for a multiple pole dynamoelectric machine |
US4510476A (en) | 1983-06-21 | 1985-04-09 | The United States Of America As Represented By The Administrator Of The National Aeronautics And Space Administration | High voltage isolation transformer |
DE3323696A1 (en) | 1983-07-01 | 1985-01-10 | Thyssen Industrie Ag, 4300 Essen | METHOD AND DEVICE FOR LAYING A PRE-MANUFACTURED WINDING OF A LINEAR MOTOR |
US4523169A (en) * | 1983-07-11 | 1985-06-11 | General Electric Company | Dry type transformer having improved ducting |
US4590416A (en) | 1983-08-08 | 1986-05-20 | Rig Efficiency, Inc. | Closed loop power factor control for power supply systems |
US4565929A (en) | 1983-09-29 | 1986-01-21 | The Boeing Company | Wind powered system for generating electricity |
US4510077A (en) | 1983-11-03 | 1985-04-09 | General Electric Company | Semiconductive glass fibers and method |
US4503284A (en) | 1983-11-09 | 1985-03-05 | Essex Group, Inc. | RF Suppressing magnet wire |
IT1195482B (en) | 1983-11-18 | 1988-10-19 | Meccanica Di Precisione Spa | PROGRAMMABLE ROBOT ABLE TO MANAGE THE FEEDING AND UNLOADING OF EMPTY SPOOLS AND FULL SPOOLS INTO AND FROM MACHINES USED FOR WINDING METAL WIRES EOD OTHER MATERIAL AT TWENTY OPERATING CHARACTERISTICS U GUALES OR DIFFERENT THAN ONE LONG THE SAME ROBOT YOU ARE LOOKING AT |
US4724345A (en) | 1983-11-25 | 1988-02-09 | General Electric Company | Electrodepositing mica on coil connections |
FR2556146B1 (en) | 1983-12-05 | 1988-01-15 | Paris & Du Rhone | DEVICE FOR MOUNTING AND INSULATING CONDUCTORS ON ROTORS OF ELECTRIC ROTATING MACHINES |
DE3444189A1 (en) | 1984-03-21 | 1985-09-26 | Kraftwerk Union AG, 4330 Mülheim | DEVICE FOR INDIRECT GAS COOLING OF THE STATE DEVELOPMENT AND / OR FOR DIRECT GAS COOLING OF THE STATE SHEET PACKAGE OF DYNAMOELECTRICAL MACHINES, PREFERRED FOR GAS COOLED TURBOGENERATORS |
US4488079A (en) | 1984-03-30 | 1984-12-11 | Westinghouse Electric Corp. | Dynamoelectric machine with stator coil end turn support system |
US4650924A (en) | 1984-07-24 | 1987-03-17 | Phelps Dodge Industries, Inc. | Ribbon cable, method and apparatus, and electromagnetic device |
US5066881A (en) | 1984-08-23 | 1991-11-19 | General Electric Company | Semi-conducting layer for insulated electrical conductors |
US5067046A (en) | 1984-08-23 | 1991-11-19 | General Electric Company | Electric charge bleed-off structure using pyrolyzed glass fiber |
US5036165A (en) | 1984-08-23 | 1991-07-30 | General Electric Co. | Semi-conducting layer for insulated electrical conductors |
US4853565A (en) * | 1984-08-23 | 1989-08-01 | General Electric Company | Semi-conducting layer for insulated electrical conductors |
AU575681B2 (en) | 1984-09-13 | 1988-08-04 | Utdc Inc. | Linear induction motor |
US4560896A (en) | 1984-10-01 | 1985-12-24 | General Electric Company | Composite slot insulation for dynamoelectric machine |
DE3438747A1 (en) | 1984-10-23 | 1986-04-24 | Standard Elektrik Lorenz Ag, 7000 Stuttgart | ELECTRONICALLY COMMUTED, COLLECTORLESS DC MOTOR |
JPH0123900Y2 (en) | 1984-11-08 | 1989-07-20 | ||
DE3441311A1 (en) | 1984-11-12 | 1986-05-15 | Siemens AG, 1000 Berlin und 8000 München | SPLICE PROTECTOR INSERT FOR CABLE SLEEVES MADE OF SHRINKABLE MATERIAL |
US4607183A (en) | 1984-11-14 | 1986-08-19 | General Electric Company | Dynamoelectric machine slot wedges with abrasion resistant layer |
JPS61121729A (en) | 1984-11-14 | 1986-06-09 | Fanuc Ltd | Liquid cooled motor |
EP0246377A1 (en) | 1986-05-23 | 1987-11-25 | Royal Melbourne Institute Of Technology Limited | Electrically-variable inductor |
DE3473698D1 (en) | 1984-12-21 | 1988-09-29 | Audi Ag | Wire-feeding device for an insulated wire cutting and stripping apparatus |
US4761602A (en) | 1985-01-22 | 1988-08-02 | Gregory Leibovich | Compound short-circuit induction machine and method of its control |
US4588916A (en) | 1985-01-28 | 1986-05-13 | General Motors Corporation | End turn insulation for a dynamoelectric machine |
US4868970A (en) * | 1985-03-08 | 1989-09-26 | Kolimorgen Corporation | Method of making an electric motor |
DE3669008D1 (en) | 1985-04-04 | 1990-03-15 | Philips Nv | COMPOSITE WIRE FOR RF APPLICATIONS, SPOOL COILED WITH SUCH A WIRE, AND DIVERSION UNIT CONTAINING SUCH A COIL. |
US4618795A (en) | 1985-04-10 | 1986-10-21 | Westinghouse Electric Corp. | Turbine generator stator end winding support assembly with decoupling from the core |
US4654551A (en) * | 1985-05-20 | 1987-03-31 | Tecumseh Products Company | Permanent magnet excited alternator compressor with brushless DC control |
US4723104A (en) | 1985-10-02 | 1988-02-02 | Frederick Rohatyn | Energy saving system for larger three phase induction motors |
FR2589017B1 (en) | 1985-10-17 | 1990-07-27 | Alsthom | SYNCHRONOUS MACHINE WITH SUPERCONDUCTING WINDINGS |
DE3543106A1 (en) | 1985-12-06 | 1987-06-11 | Kabelmetal Electro Gmbh | ELECTRIC CABLE FOR USE AS WINDING STRING FOR LINEAR MOTORS |
US4656379A (en) * | 1985-12-18 | 1987-04-07 | The Garrett Corporation | Hybrid excited generator with flux control of consequent-pole rotor |
FR2594271A1 (en) | 1986-02-13 | 1987-08-14 | Paris & Du Rhone | Rotor for electric rotating machine, with slots housing two overlying conductors |
IT1190077B (en) | 1986-02-28 | 1988-02-10 | Pirelli Cavi Spa | ELECTRIC CABLE WITH IMPROVED SCREEN AND PROCEDURE FOR THE CONSTRUCTION OF THIS SCREEN |
US5244624B1 (en) | 1986-03-31 | 1997-11-18 | Nu Pipe Inc | Method of installing a new pipe inside an existing conduit by progressive rounding |
US5447665A (en) | 1986-03-31 | 1995-09-05 | Nupipe, Inc. | Method of removal of replacement pipe installed in an existing conduit |
DE3612112A1 (en) | 1986-04-10 | 1987-10-15 | Siemens Ag | Bracing for the teeth of the stator of a turbogenerator |
US4687882A (en) | 1986-04-28 | 1987-08-18 | Stone Gregory C | Surge attenuating cable |
US4963695A (en) | 1986-05-16 | 1990-10-16 | Pirelli Cable Corporation | Power cable with metallic shielding tape and water swellable powder |
GB8617004D0 (en) | 1986-07-11 | 1986-08-20 | Bp Chem Int Ltd | Polymer composition |
JPS63110939A (en) | 1986-10-25 | 1988-05-16 | Hitachi Ltd | Rotor of induction motor |
JPH0687642B2 (en) | 1986-12-15 | 1994-11-02 | 株式会社日立製作所 | Rotor winding abnormality diagnosis device for rotating electric machine |
US4924342A (en) | 1987-01-27 | 1990-05-08 | Teledyne Inet | Low voltage transient current limiting circuit |
DE3787798D1 (en) | 1987-03-06 | 1993-11-18 | Groh Heinrich | Arrangement for electrical power supply lines to protect against explosions of gas and / or dust-air mixtures, preferably for underground operations. |
JPH07108074B2 (en) | 1987-03-10 | 1995-11-15 | 株式会社三ツ葉電機製作所 | Slot structure of rotor core in rotating electric machine |
CA1258881A (en) | 1987-04-15 | 1989-08-29 | Leonard Bolduc | Self-regulated transformer with gaps |
US4771168A (en) | 1987-05-04 | 1988-09-13 | The University Of Southern California | Light initiated high power electronic switch |
SU1511810A1 (en) | 1987-05-26 | 1989-09-30 | Ленинградское Электромашиностроительное Объединение "Электросила" Им.С.М.Кирова | Method of repairing laminated stator core of high-power electric machine |
US4890040A (en) | 1987-06-01 | 1989-12-26 | Gundersen Martin A | Optically triggered back-lighted thyratron network |
US5012125A (en) | 1987-06-03 | 1991-04-30 | Norand Corporation | Shielded electrical wire construction, and transformer utilizing the same for reduction of capacitive coupling |
SE457792B (en) | 1987-06-12 | 1989-01-30 | Kabmatik Ab | CABLE EXCHANGE DEVICE FOR APPLICATION FROM EXCHANGE FROM A FIRST ROTARY DRUM TO ANOTHER ROTARY DRUM |
US4845308A (en) | 1987-07-20 | 1989-07-04 | The Babcock & Wilcox Company | Superconducting electrical conductor |
DE3726346A1 (en) | 1987-08-07 | 1989-02-16 | Vacuumschmelze Gmbh | Annular core (ring core) for current sensors |
US4800314A (en) | 1987-08-24 | 1989-01-24 | Westinghouse Electric Corp. | Deep beam support arrangement for dynamoelectric machine stator coil end portions |
US4801832A (en) | 1987-11-04 | 1989-01-31 | General Electric Company | Stator and rotor lamination construction for a dynamo-electric machine |
DE3737719A1 (en) | 1987-11-06 | 1989-05-24 | Thyssen Industrie | METHOD AND DEVICE FOR INSERTING A WINDING IN THE INDUCTOR OF A LINEAR MOTOR |
US4810919A (en) | 1987-11-16 | 1989-03-07 | Westinghouse Electric Corp. | Low-torque nuts for stator core through-bolts |
CA1318948C (en) | 1987-11-18 | 1993-06-08 | Takayuki Nimiya | Cable closure |
US4859989A (en) | 1987-12-01 | 1989-08-22 | W. L. Gore & Associates, Inc. | Security system and signal carrying member thereof |
US4994952A (en) | 1988-02-10 | 1991-02-19 | Electronics Research Group, Inc. | Low-noise switching power supply having variable reluctance transformer |
NL8800832A (en) | 1988-03-31 | 1989-10-16 | Lovink Terborg Bv | METHOD FOR PROTECTING PROTECTION AGAINST MOISTURE-ENCLOSED ELEMENTS AND FILLING MASS USED IN THAT METHOD |
US4914386A (en) | 1988-04-28 | 1990-04-03 | Abb Power Distribution Inc. | Method and apparatus for providing thermal protection for large motors based on accurate calculations of slip dependent rotor resistance |
US4864266A (en) | 1988-04-29 | 1989-09-05 | Electric Power Research Institute, Inc. | High-voltage winding for core-form power transformers |
DE3816652A1 (en) | 1988-05-16 | 1989-11-30 | Magnet Motor Gmbh | ELECTRIC MACHINE WITH LIQUID COOLING |
JPH0721078Y2 (en) | 1988-07-21 | 1995-05-15 | 多摩川精機株式会社 | Electric motor |
CH677549A5 (en) | 1988-08-02 | 1991-05-31 | Asea Brown Boveri | |
US4847747A (en) | 1988-09-26 | 1989-07-11 | Westinghouse Electric Corp. | Commutation circuit for load-commutated inverter induction motor drives |
US5083360A (en) | 1988-09-28 | 1992-01-28 | Abb Power T&D Company, Inc. | Method of making a repairable amorphous metal transformer joint |
GB2223877B (en) | 1988-10-17 | 1993-05-19 | Pirelli General Plc | Extra-high-voltage power cable |
US4926079A (en) | 1988-10-17 | 1990-05-15 | Ryobi Motor Products Corp. | Motor field winding with intermediate tap |
JPH02179246A (en) | 1988-12-28 | 1990-07-12 | Fanuc Ltd | Stator construction of built-in motor |
US5168662A (en) | 1988-12-28 | 1992-12-08 | Fanuc Ltd. | Process of structuring stator of built-in motor |
US4982147A (en) | 1989-01-30 | 1991-01-01 | State Of Oregon Acting By And Through The State Board Of Higher Education On Behalf Of Oregon State University | Power factor motor control system |
US5091609A (en) | 1989-02-14 | 1992-02-25 | Sumitomo Electric Industries, Ltd. | Insulated wire |
US5136459A (en) | 1989-03-13 | 1992-08-04 | Electric Power Research Institute, Inc. | High speed current limiting system responsive to symmetrical & asymmetrical currents |
US4942326A (en) | 1989-04-19 | 1990-07-17 | Westinghouse Electric Corp. | Biased securement system for end winding conductor |
US5124607A (en) | 1989-05-19 | 1992-06-23 | General Electric Company | Dynamoelectric machines including metal filled glass cloth slot closure wedges, and methods of making the same |
JPH0351968A (en) | 1989-07-19 | 1991-03-06 | Toshiba Corp | Linearization decision system |
US4949001A (en) * | 1989-07-21 | 1990-08-14 | Campbell Steven R | Partial discharge detection method and apparatus |
DE3925337A1 (en) | 1989-07-31 | 1991-02-07 | Loher Ag | Electric motor with housing accommodating stator surrounding rotor - has cooling ducts running axially so gaseous cooling medium under high pressure is fed in closed cooling circuit |
SE465343B (en) * | 1989-11-20 | 1991-08-26 | Olof Magnus Lalander | DEVICE FOR TRANSFORMATION OF HIGH ELECTRIC EFFECTS FROM A LICENSIVE LEVEL TO ANOTHER LICENSIVE LEVEL |
US5355046A (en) | 1989-12-15 | 1994-10-11 | Klaus Weigelt | Stator end-winding system and a retrofitting set for same |
SE465240B (en) | 1989-12-22 | 1991-08-12 | Asea Brown Boveri | OVERVOLTAGE PROTECTION FOR SERIAL CONDENSER EQUIPMENT |
US5097241A (en) | 1989-12-29 | 1992-03-17 | Sundstrand Corporation | Cooling apparatus for windings |
YU48139B (en) | 1990-01-25 | 1997-05-28 | Branimir Jakovljević | LAMINATED MAGNETIC core |
EP0440865A1 (en) | 1990-02-09 | 1991-08-14 | Asea Brown Boveri Ab | Electrical insulation |
US5030813A (en) | 1990-02-06 | 1991-07-09 | Pulsair Anstalt Corporation | Welding apparatus and transformer therefor |
CA2010670C (en) | 1990-02-22 | 1997-04-01 | James H. Dymond | Salient pole rotor for a dynamoelectric machine |
TW215446B (en) | 1990-02-23 | 1993-11-01 | Furukawa Electric Co Ltd | |
US5171941A (en) | 1990-03-30 | 1992-12-15 | The Furukawa Electric Co., Ltd. | Superconducting strand for alternating current |
JP2814687B2 (en) | 1990-04-24 | 1998-10-27 | 日立電線株式会社 | Watertight rubber / plastic insulated cable |
DE4022476A1 (en) | 1990-07-14 | 1992-01-16 | Thyssen Industrie | Electric cable for three=phase AC winding of linear motor - covers one phase by inner conducting layer surrounded by insulation and outer conducting layer |
DE4023903C1 (en) | 1990-07-27 | 1991-11-07 | Micafil Ag, Zuerich, Ch | Planar insulator for electrical machine or appts. - is laminated construction withstanding high mechanical loading and with curved edges for fitting into grooves |
NL9002005A (en) | 1990-09-12 | 1992-04-01 | Philips Nv | TRANSFORMER. |
DE4030236C2 (en) | 1990-09-25 | 1999-01-07 | Thyssen Industrie | Device for removing the winding of a linear motor |
US5111095A (en) | 1990-11-28 | 1992-05-05 | Magna Physics Corporation | Polyphase switched reluctance motor |
US5175396A (en) | 1990-12-14 | 1992-12-29 | Westinghouse Electric Corp. | Low-electric stress insulating wall for high voltage coils having roebeled strands |
DE4100135C1 (en) | 1991-01-04 | 1992-05-14 | Loher Ag, 8399 Ruhstorf, De | |
US5187428A (en) | 1991-02-26 | 1993-02-16 | Miller Electric Mfg. Co. | Shunt coil controlled transformer |
ES2025518A6 (en) | 1991-03-08 | 1992-03-16 | Huarte Frances Domingo | Rotary electromechanical arrangements. |
US5153460A (en) | 1991-03-25 | 1992-10-06 | The United States Of America As Represented By The Secretary Of The Army | Triggering technique for multi-electrode spark gap switch |
DE4112161C2 (en) | 1991-04-13 | 1994-11-24 | Fraunhofer Ges Forschung | Gas discharge device |
FR2677802B1 (en) | 1991-06-14 | 1994-09-09 | Alsthom Gec | ELECTRIC WINDING AND ITS WINDING METHOD. |
US5246783A (en) | 1991-08-15 | 1993-09-21 | Exxon Chemical Patents Inc. | Electrical devices comprising polymeric insulating or semiconducting members |
SE469361B (en) | 1991-11-04 | 1993-06-21 | Asea Brown Boveri | PROCEDURE AND DEVICE FOR REDUCTION OF DIFFICULTIES IN THE POWER |
US5499178A (en) | 1991-12-16 | 1996-03-12 | Regents Of The University Of Minnesota | System for reducing harmonics by harmonic current injection |
US5264778A (en) | 1991-12-31 | 1993-11-23 | Westinghouse Electric Corp. | Apparatus protecting a synchronous machine from under excitation |
CA2086897A1 (en) | 1992-01-13 | 1993-07-14 | Howard H. Bobry | Toroidal transformer and method for making |
US5343139A (en) | 1992-01-31 | 1994-08-30 | Westinghouse Electric Corporation | Generalized fast, power flow controller |
US5235488A (en) | 1992-02-05 | 1993-08-10 | Brett Products, Inc. | Wire wound core |
US5327637A (en) | 1992-02-07 | 1994-07-12 | Kabelmetal Electro Gmbh | Process for repairing the winding of an electrical linear drive |
JP3135338B2 (en) | 1992-02-21 | 2001-02-13 | 株式会社日立製作所 | Commutation type DC circuit breaker |
EP0629311B1 (en) | 1992-03-05 | 1996-06-19 | Siemens Aktiengesellschaft | Coil for high-voltage transformer |
JP3245748B2 (en) | 1992-03-09 | 2002-01-15 | 久光製薬株式会社 | P-menthane derivative and cooling sensate containing the same |
JPH05328681A (en) | 1992-05-18 | 1993-12-10 | Mitsuba Electric Mfg Co Ltd | Coating material for armature core in motor of electrical equipment |
DE4218969A1 (en) | 1992-06-10 | 1993-12-16 | Asea Brown Boveri | Process for fixing winding heads of electrical machines and means for carrying out the process |
FR2692693A1 (en) | 1992-06-23 | 1993-12-24 | Smh Management Services Ag | Control device of an asynchronous motor |
GB2268337B (en) | 1992-07-01 | 1996-06-05 | Gec Alsthom Ltd | Electrical machine slot wedging system |
US5304883A (en) | 1992-09-03 | 1994-04-19 | Alliedsignal Inc | Ring wound stator having variable cross section conductors |
AT399790B (en) | 1992-09-10 | 1995-07-25 | Elin Energieversorgung | HIGH VOLTAGE WINDING |
DE4233558C2 (en) | 1992-09-30 | 1995-07-20 | Siemens Ag | Electrical machine |
DE69308737T2 (en) | 1992-11-05 | 1997-06-19 | Gec Alsthom Electromec | Superconducting winding, in particular for current limiters and current limiters with such a winding |
US5325008A (en) | 1992-12-09 | 1994-06-28 | General Electric Company | Constrained ripple spring assembly with debondable adhesive and methods of installation |
GB9226925D0 (en) | 1992-12-24 | 1993-02-17 | Anglia Electronic Tech Ltd | Transformer winding |
US5449861A (en) | 1993-02-24 | 1995-09-12 | Vazaki Corporation | Wire for press-connecting terminal and method of producing the conductive wire |
DE69401722T2 (en) | 1993-03-26 | 1997-07-03 | Ngk Insulators Ltd | Superconducting device for residual current limitation |
EP0620630A1 (en) | 1993-03-26 | 1994-10-19 | Ngk Insulators, Ltd. | Superconducting fault current limiter |
US5399941A (en) | 1993-05-03 | 1995-03-21 | The United States Of America As Represented By The Secretary Of The Navy | Optical pseudospark switch |
US5455551A (en) * | 1993-05-11 | 1995-10-03 | Abb Power T&D Company Inc. | Integrated temperature sensing duct spacer unit and method of forming |
US5341281A (en) | 1993-05-14 | 1994-08-23 | Allen-Bradley Company, Inc. | Harmonic compensator using low leakage reactance transformer |
US5365132A (en) | 1993-05-27 | 1994-11-15 | General Electric Company | Lamination for a dynamoelectric machine with improved cooling capacity |
JP3355700B2 (en) | 1993-06-14 | 2002-12-09 | 松下電器産業株式会社 | Rotating electric machine stator |
FR2707448B1 (en) | 1993-07-06 | 1995-09-15 | Cableco Sa | Power generator for an arc lamp. |
US5321308A (en) | 1993-07-14 | 1994-06-14 | Tri-Sen Systems Inc. | Control method and apparatus for a turbine generator |
US5545853A (en) | 1993-07-19 | 1996-08-13 | Champlain Cable Corporation | Surge-protected cable |
FR2708157B1 (en) | 1993-07-22 | 1995-09-08 | Valeo Equip Electr Moteur | Element of a rotating machine and motor vehicle starter comprising such an element. |
DE4329382A1 (en) | 1993-09-01 | 1995-03-02 | Abb Management Ag | Method and device for detecting earth faults on the conductors of an electrical machine |
GB2283133B (en) | 1993-10-20 | 1998-04-15 | Gen Electric | Dynamoelectric machine and method for manufacturing same |
SE502417C2 (en) | 1993-12-29 | 1995-10-16 | Skaltek Ab | Control device for unrolling or unrolling a string, eg a cable on or from a drum |
DE4402184C2 (en) | 1994-01-26 | 1995-11-23 | Friedrich Prof Dr Ing Klinger | Multi-pole synchronous generator for gearless horizontal-axis wind turbines with nominal powers of up to several megawatts |
JP3468817B2 (en) | 1994-02-25 | 2003-11-17 | 株式会社東芝 | Field ground fault detector |
DE4409794C1 (en) | 1994-03-22 | 1995-08-24 | Vem Elektroantriebe Gmbh | Fastening for equalising connection lines of high-power DC machines |
US5530307A (en) | 1994-03-28 | 1996-06-25 | Emerson Electric Co. | Flux controlled permanent magnet dynamo-electric machine |
DE4412412C2 (en) | 1994-04-11 | 1996-03-28 | Siemens Ag | Locomotive transformer and winding arrangement for this |
DE4412761C2 (en) | 1994-04-13 | 1997-04-10 | Siemens Ag | Conductor feedthrough for an AC device with superconductivity |
JP3623269B2 (en) * | 1994-04-15 | 2005-02-23 | コールモージェン・コーポレーション | Axial air gap motor |
US5500632A (en) | 1994-05-11 | 1996-03-19 | Halser, Iii; Joseph G. | Wide band audio transformer with multifilar winding |
GB2289992B (en) | 1994-05-24 | 1998-05-20 | Gec Alsthom Ltd | Improvements in or relating to cooling arrangements in rotating electrical machines |
FI942447A0 (en) | 1994-05-26 | 1994-05-26 | Abb Stroemberg Kojeet Oy | Foerfarande Foer eliminering av stoerningar i ett elkraftoeverfoeringsnaet samt koppling i ett elkraftoeverfoeringsnaet |
DE4420322C2 (en) | 1994-06-13 | 1997-02-27 | Dresden Ev Inst Festkoerper | YBa¶2¶Cu¶3¶O¶X¶ high-temperature superconductor and method for its production |
IT1266896B1 (en) | 1994-07-27 | 1997-01-21 | Magneti Marelli Spa | ROTOR OF AN ELECTRIC MACHINE, IN PARTICULAR OF AN ELECTRIC MOTOR FOR STARTING THE INTERNAL COMBUSTION ENGINE OF A MOTOR VEHICLE AND |
US5550410A (en) * | 1994-08-02 | 1996-08-27 | Titus; Charles H. | Gas turbine electrical power generation scheme utilizing remotely located fuel sites |
US5612510A (en) | 1994-10-11 | 1997-03-18 | Champlain Cable Corporation | High-voltage automobile and appliance cable |
DE4438186A1 (en) | 1994-10-26 | 1996-05-02 | Abb Management Ag | Operation of sync electrical machine mechanically coupled to gas-turbine |
US5533658A (en) | 1994-11-10 | 1996-07-09 | Production Tube, Inc. | Apparatus having replaceable shoes for positioning and gripping tubing |
US5510942A (en) | 1994-12-19 | 1996-04-23 | General Electric Company | Series-capacitor compensation equipment |
JP2863124B2 (en) | 1995-01-17 | 1999-03-03 | トーマス アンド ベッツ コーポレーション | Force-enclosed cable connection envelope with encapsulant outflow container |
EP0729217B1 (en) * | 1995-02-21 | 2000-01-12 | Siemens Aktiengesellschaft | Hybride excited synchronous machine |
GB9507391D0 (en) | 1995-04-10 | 1995-05-31 | Switched Reluctance Drives Ltd | Method and apparatus for reducing winding failures in switched reluctance machines |
CA2170686A1 (en) | 1995-04-21 | 1996-10-22 | Mark A. Runkle | Interconnection system for electrical systems having differing electrical characteristic |
US5742515A (en) | 1995-04-21 | 1998-04-21 | General Electric Co. | Asynchronous conversion method and apparatus for use with variable speed turbine hydroelectric generation |
DE19515003C2 (en) | 1995-04-24 | 1997-04-17 | Asea Brown Boveri | Superconducting coil |
US5663605A (en) * | 1995-05-03 | 1997-09-02 | Ford Motor Company | Rotating electrical machine with electromagnetic and permanent magnet excitation |
JPH08340661A (en) | 1995-06-13 | 1996-12-24 | Matsushita Electric Ind Co Ltd | Recycling method of resin-molded rotating electric machine and molding resin |
US5691589A (en) | 1995-06-30 | 1997-11-25 | Kaman Electromagnetics Corporation | Detachable magnet carrier for permanent magnet motor |
US5607320A (en) | 1995-09-28 | 1997-03-04 | Osram Sylvania Inc. | Cable clamp apparatus |
GB2308490A (en) | 1995-12-18 | 1997-06-25 | Oxford Instr Ltd | Superconductor and energy storage device |
DE19547229A1 (en) | 1995-12-18 | 1997-06-19 | Asea Brown Boveri | Packing strips for large rotary electrical machine stator winding |
IT1281651B1 (en) | 1995-12-21 | 1998-02-20 | Pirelli Cavi S P A Ora Pirelli | TERMINAL FOR CONNECTING A SUPERCONDUCTIVE POLYPHASE CABLE TO A ROOM TEMPERATURE ELECTRICAL SYSTEM |
FR2745117B1 (en) | 1996-02-21 | 2000-10-13 | Whitaker Corp | FLEXIBLE AND FLEXIBLE CABLE WITH SPACED PROPELLERS |
DE69709432T2 (en) | 1996-03-20 | 2002-08-22 | Nkt Cables A/S, Broendby | High voltage cables |
DE19620906C2 (en) | 1996-05-24 | 2000-02-10 | Siemens Ag | Wind farm |
US5807447A (en) | 1996-10-16 | 1998-09-15 | Hendrix Wire & Cable, Inc. | Neutral conductor grounding system |
DE19747968A1 (en) | 1997-10-30 | 1999-05-06 | Abb Patent Gmbh | Process for repairing laminated cores of an electrical machine |
GB2332557A (en) | 1997-11-28 | 1999-06-23 | Asea Brown Boveri | Electrical power conducting means |
-
1997
- 1997-05-27 AT AT97925364T patent/ATE266244T1/en not_active IP Right Cessation
- 1997-05-27 JP JP09542198A patent/JP2000511387A/en not_active Ceased
- 1997-05-27 EP EP97924471A patent/EP0888627A1/en not_active Withdrawn
- 1997-05-27 CN CNB971965455A patent/CN1158680C/en not_active Expired - Fee Related
- 1997-05-27 US US08/973,210 patent/US6940380B1/en not_active Expired - Fee Related
- 1997-05-27 CN CNB971966427A patent/CN1257593C/en not_active Expired - Fee Related
- 1997-05-27 SK SK1640-98A patent/SK164098A3/en unknown
- 1997-05-27 GE GEAP19974610A patent/GEP20022779B/en unknown
- 1997-05-27 CN CN97195037A patent/CN1220026A/en active Pending
- 1997-05-27 IL IL12730797A patent/IL127307A0/en unknown
- 1997-05-27 AU AU30521/97A patent/AU731065B2/en not_active Ceased
- 1997-05-27 EP EP97924462A patent/EP0906651A2/en not_active Withdrawn
- 1997-05-27 BR BR9709489A patent/BR9709489A/en not_active IP Right Cessation
- 1997-05-27 CN CN97196554A patent/CN1105413C/en not_active Expired - Fee Related
- 1997-05-27 BR BR9709391A patent/BR9709391A/en not_active IP Right Cessation
- 1997-05-27 TR TR1998/02474T patent/TR199802474T2/en unknown
- 1997-05-27 KR KR10-1998-0709688A patent/KR100382963B1/en not_active IP Right Cessation
- 1997-05-27 DE DE69728972T patent/DE69728972T2/en not_active Expired - Lifetime
- 1997-05-27 EE EE9800410A patent/EE03461B1/en not_active IP Right Cessation
- 1997-05-27 NZ NZ333016A patent/NZ333016A/en not_active IP Right Cessation
- 1997-05-27 CZ CZ983881A patent/CZ388198A3/en unknown
- 1997-05-27 EA EA199801073A patent/EA001181B1/en not_active IP Right Cessation
- 1997-05-27 TR TR1998/02479T patent/TR199802479T2/en unknown
- 1997-05-27 WO PCT/SE1997/000878 patent/WO1997045907A2/en not_active Application Discontinuation
- 1997-05-27 UA UA98126934A patent/UA44857C2/en unknown
- 1997-05-27 JP JP09542197A patent/JP2000515357A/en active Pending
- 1997-05-27 AT AT97925366T patent/ATE261203T1/en not_active IP Right Cessation
- 1997-05-27 IL IL12709897A patent/IL127098A0/en unknown
- 1997-05-27 CZ CZ983879A patent/CZ387998A3/en unknown
- 1997-05-27 PL PL97330234A patent/PL330234A1/en unknown
- 1997-05-27 CA CA002256535A patent/CA2256535A1/en not_active Abandoned
- 1997-05-27 CA CA002255742A patent/CA2255742A1/en not_active Abandoned
- 1997-05-27 EA EA199801071A patent/EA001488B1/en not_active IP Right Cessation
- 1997-05-27 WO PCT/SE1997/000889 patent/WO1997045848A1/en not_active Application Discontinuation
- 1997-05-27 DE DE19781786T patent/DE19781786T1/en not_active Withdrawn
- 1997-05-27 TR TR1998/02475T patent/TR199802475T2/en unknown
- 1997-05-27 BR BR9709385A patent/BR9709385A/en not_active IP Right Cessation
- 1997-05-27 JP JP9542194A patent/JP3051905B2/en not_active Expired - Fee Related
- 1997-05-27 DE DE69727917T patent/DE69727917T2/en not_active Expired - Fee Related
- 1997-05-27 AP APAP/P/1998/001404A patent/AP1083A/en active
- 1997-05-27 PL PL97330288A patent/PL182736B1/en not_active IP Right Cessation
- 1997-05-27 EP EP97925366A patent/EP0888662B1/en not_active Expired - Lifetime
- 1997-05-27 CZ CZ983868A patent/CZ386898A3/en unknown
- 1997-05-27 SK SK1641-98A patent/SK164198A3/en unknown
- 1997-05-27 NZ NZ333014A patent/NZ333014A/en unknown
- 1997-05-27 AU AU29884/97A patent/AU718706B2/en not_active Ceased
- 1997-05-27 JP JP09542204A patent/JP2000511349A/en active Pending
- 1997-05-27 PL PL97330800A patent/PL185200B1/en not_active IP Right Cessation
- 1997-05-27 EA EA199801072A patent/EA000993B1/en not_active IP Right Cessation
- 1997-05-27 AU AU30523/97A patent/AU729780B2/en not_active Ceased
- 1997-05-27 EA EA199801048A patent/EA001096B1/en not_active IP Right Cessation
- 1997-05-27 CA CA002256469A patent/CA2256469A1/en not_active Abandoned
- 1997-05-27 AP APAP/P/1998/001398A patent/AP843A/en active
- 1997-05-27 NZ NZ333017A patent/NZ333017A/en unknown
- 1997-05-27 YU YU54498A patent/YU54498A/en unknown
- 1997-05-27 NZ NZ333600A patent/NZ333600A/en unknown
- 1997-05-27 KR KR1019980709689A patent/KR20000016122A/en not_active Application Discontinuation
- 1997-05-27 WO PCT/SE1997/000879 patent/WO1997045921A2/en not_active Application Discontinuation
- 1997-05-27 WO PCT/SE1997/000875 patent/WO1997045847A1/en not_active Application Discontinuation
- 1997-05-27 AP APAP/P/1998/001408A patent/AP936A/en active
- 1997-05-27 US US08/952,990 patent/US20020047268A1/en not_active Abandoned
- 1997-05-27 EP EP97925364A patent/EP0888628B1/en not_active Expired - Lifetime
- 1997-05-27 PL PL97330216A patent/PL330216A1/en unknown
- 1997-05-27 AU AU29875/97A patent/AU714564B2/en not_active Ceased
- 1997-05-27 TR TR1998/02465T patent/TR199802465T2/en unknown
- 1997-05-27 US US08/952,993 patent/US6822363B2/en not_active Expired - Fee Related
- 1997-05-27 CA CA002256347A patent/CA2256347A1/en not_active Abandoned
- 1997-05-27 KR KR1019980709690A patent/KR20000016123A/en not_active Application Discontinuation
- 1997-05-27 IL IL12731697A patent/IL127316A/en not_active IP Right Cessation
- 1997-05-28 ID IDP971797A patent/ID19692A/en unknown
- 1997-05-28 ID IDP971792A patent/ID18779A/en unknown
- 1997-05-28 ID IDP971798A patent/ID19546A/en unknown
- 1997-05-29 AR ARP970102316A patent/AR007337A1/en unknown
- 1997-05-29 CO CO97029868A patent/CO4600757A1/en unknown
- 1997-05-29 CO CO97029935A patent/CO4600011A1/en unknown
- 1997-05-29 CO CO97029905A patent/CO4650244A1/en unknown
- 1997-05-29 CO CO97029869A patent/CO4600012A1/en unknown
- 1997-05-29 PE PE1997000440A patent/PE73398A1/en not_active Application Discontinuation
- 1997-05-29 AR ARP970102321A patent/AR007342A1/en not_active Application Discontinuation
- 1997-05-29 PE PE1997000445A patent/PE67998A1/en not_active Application Discontinuation
- 1997-05-29 PE PE1997000437A patent/PE73098A1/en not_active Application Discontinuation
- 1997-05-29 AR ARP970102320A patent/AR007341A1/en not_active Application Discontinuation
- 1997-06-10 TW TW086107937A patent/TW366503B/en active
- 1997-06-10 TW TW086107938A patent/TW443024B/en active
-
1998
- 1998-02-27 OA OA9800227A patent/OA10927A/en unknown
- 1998-11-17 IS IS4895A patent/IS1798B/en unknown
- 1998-11-17 IS IS4896A patent/IS4896A/en unknown
- 1998-11-20 IS IS4903A patent/IS4903A/en unknown
- 1998-11-23 BG BG102944A patent/BG63415B1/en unknown
- 1998-11-25 OA OA9800226A patent/OA11018A/en unknown
- 1998-11-25 NO NO985499A patent/NO985499D0/en not_active Application Discontinuation
- 1998-11-27 NO NO985583A patent/NO985583L/en not_active Application Discontinuation
- 1998-11-27 NO NO985581A patent/NO985581L/en not_active Application Discontinuation
- 1998-11-27 NO NO985582A patent/NO985582L/en unknown
- 1998-11-27 BG BG102964A patent/BG63442B1/en unknown
- 1998-12-11 BG BG103009A patent/BG63413B1/en unknown
Patent Citations (42)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US1508456A (en) * | 1924-01-04 | 1924-09-16 | Perfection Mfg Co | Ground clamp |
US1904885A (en) * | 1930-06-13 | 1933-04-18 | Western Electric Co | Capstan |
US2409893A (en) * | 1945-04-30 | 1946-10-22 | Westinghouse Electric Corp | Semiconducting composition |
US2650350A (en) * | 1948-11-04 | 1953-08-25 | Gen Electric | Angular modulating system |
US2749456A (en) * | 1952-06-23 | 1956-06-05 | Us Electrical Motors Inc | Waterproof stator construction for submersible dynamo-electric machine |
US3014139A (en) * | 1959-10-27 | 1961-12-19 | Gen Electric | Direct-cooled cable winding for electro magnetic device |
US3197723A (en) * | 1961-04-26 | 1965-07-27 | Ite Circuit Breaker Ltd | Cascaded coaxial cable transformer |
US3411027A (en) * | 1965-07-15 | 1968-11-12 | Siemens Ag | Permanent magnet excited electric machine |
US3392779A (en) * | 1966-10-03 | 1968-07-16 | Certain Teed Prod Corp | Glass fiber cooling means |
US3571690A (en) * | 1967-10-30 | 1971-03-23 | Voldemar Voldemarovich Apsit | Power generating unit for railway coaches |
US3541221A (en) * | 1967-12-11 | 1970-11-17 | Comp Generale Electricite | Electric cable whose length does not vary as a function of temperature |
US3813764A (en) * | 1969-06-09 | 1974-06-04 | Res Inst Iron Steel | Method of producing laminated pancake type superconductive magnets |
US3651244A (en) * | 1969-10-15 | 1972-03-21 | Gen Cable Corp | Power cable with corrugated or smooth longitudinally folded metallic shielding tape |
US3666876A (en) * | 1970-07-17 | 1972-05-30 | Exxon Research Engineering Co | Novel compositions with controlled electrical properties |
US3660721A (en) * | 1971-02-01 | 1972-05-02 | Gen Electric | Protective equipment for an alternating current power distribution system |
US3684906A (en) * | 1971-03-26 | 1972-08-15 | Gen Electric | Castable rotor having radially venting laminations |
US3743867A (en) * | 1971-12-20 | 1973-07-03 | Massachusetts Inst Technology | High voltage oil insulated and cooled armature windings |
US3699238A (en) * | 1972-02-29 | 1972-10-17 | Anaconda Wire & Cable Co | Flexible power cable |
US3787607A (en) * | 1972-05-31 | 1974-01-22 | Teleprompter Corp | Coaxial cable splice |
US3828115A (en) * | 1973-07-27 | 1974-08-06 | Kerite Co | High voltage cable having high sic insulation layer between low sic insulation layers and terminal construction thereof |
US3912957A (en) * | 1973-12-27 | 1975-10-14 | Gen Electric | Dynamoelectric machine stator assembly with multi-barrel connection insulator |
US4008367A (en) * | 1974-06-24 | 1977-02-15 | Siemens Aktiengesellschaft | Power cable with plastic insulation and an outer conducting layer |
US4132914A (en) * | 1975-04-22 | 1979-01-02 | Khutoretsky Garri M | Six-phase winding of electric machine stator |
US3993860A (en) * | 1975-08-18 | 1976-11-23 | Samuel Moore And Company | Electrical cable adapted for use on a tractor trailer |
US4321426A (en) * | 1978-06-09 | 1982-03-23 | General Electric Company | Bonded transposed transformer winding cable strands having improved short circuit withstand |
US4571453A (en) * | 1978-11-09 | 1986-02-18 | The Fujikura Cable Works, Limited | Conductor for an electrical power cable |
US4314168A (en) * | 1979-05-21 | 1982-02-02 | Kabel-Und Metallwerke Gutehoffnungshuette A.G. | Prefabricated stator windings |
US4367890A (en) * | 1980-02-11 | 1983-01-11 | Siemens Aktiengesellschaft | Turbine set with a generator feeding a network of constant frequency |
US4490651A (en) * | 1980-05-23 | 1984-12-25 | Canadian Patents & Development Limited | Laser triggered high voltage rail gap switch |
US4384944A (en) * | 1980-09-18 | 1983-05-24 | Pirelli Cable Corporation | Carbon filled irradiation cross-linked polymeric insulation for electric cable |
US4361723A (en) * | 1981-03-16 | 1982-11-30 | Harvey Hubbell Incorporated | Insulated high voltage cables |
US4401920A (en) * | 1981-05-11 | 1983-08-30 | Canadian Patents & Development Limited | Laser triggered high voltage rail gap switch |
US4365178A (en) * | 1981-06-08 | 1982-12-21 | General Electric Co. | Laminated rotor for a dynamoelectric machine with coolant passageways therein |
US4432029A (en) * | 1981-07-06 | 1984-02-14 | Asea Aktiebolag | Protective means for series capacitors |
US4520287A (en) * | 1981-10-27 | 1985-05-28 | Emerson Electric Co. | Stator for a multiple-pole dynamoelectric machine and method of fabricating same |
US4437464A (en) * | 1981-11-09 | 1984-03-20 | C.R. Bard, Inc. | Electrosurgical generator safety apparatus |
US4484106A (en) * | 1982-05-14 | 1984-11-20 | Canadian Patents & Development Limited | UV Radiation triggered rail-gap switch |
US4508251A (en) * | 1982-10-26 | 1985-04-02 | Nippon Telegraph And Telephone Public Corp. | Cable pulling/feeding apparatus |
US4615778A (en) * | 1983-11-25 | 1986-10-07 | General Electric Company | Process for electrodepositing mica on coil or bar connections and resulting products |
US4622116A (en) * | 1983-11-25 | 1986-11-11 | General Electric Company | Process for electrodepositing mica on coil or bar connections and resulting products |
US4723083A (en) * | 1983-11-25 | 1988-02-02 | General Electric Company | Electrodeposited mica on coil bar connections and resulting products |
US4652963A (en) * | 1984-03-07 | 1987-03-24 | Asea Aktiebolag | Series capacitor equipment |
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