WO2016079806A1 - 回転電機 - Google Patents
回転電機 Download PDFInfo
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- WO2016079806A1 WO2016079806A1 PCT/JP2014/080501 JP2014080501W WO2016079806A1 WO 2016079806 A1 WO2016079806 A1 WO 2016079806A1 JP 2014080501 W JP2014080501 W JP 2014080501W WO 2016079806 A1 WO2016079806 A1 WO 2016079806A1
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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
- H02K9/02—Arrangements for cooling or ventilating by ambient air flowing through the machine
- H02K9/04—Arrangements for cooling or ventilating by ambient air flowing through the machine having means for generating a flow of cooling medium
- H02K9/06—Arrangements for cooling or ventilating by ambient air flowing through the machine having means for generating a flow of cooling medium with fans or impellers driven by the machine shaft
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K5/00—Casings; Enclosures; Supports
- H02K5/04—Casings or enclosures characterised by the shape, form or construction thereof
- H02K5/20—Casings or enclosures characterised by the shape, form or construction thereof with channels or ducts for flow of cooling medium
- H02K5/203—Casings or enclosures characterised by the shape, form or construction thereof with channels or ducts for flow of cooling medium specially adapted for liquids, e.g. cooling jackets
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K7/00—Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
- H02K7/14—Structural association with mechanical loads, e.g. with hand-held machine tools or fans
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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
- H02K9/14—Arrangements for cooling or ventilating wherein gaseous cooling medium circulates between the machine casing and a surrounding mantle
- H02K9/18—Arrangements for cooling or ventilating wherein gaseous cooling medium circulates between the machine casing and a surrounding mantle wherein the external part of the closed circuit comprises a heat exchanger structurally associated with the machine casing
Definitions
- the present invention relates to a rotating electrical machine in which a stator and a rotor are housed in a casing in which a cooling gas is sealed, and a gas cooler is provided.
- the structure is such that the cooling gas circulates in the order of the gap and the gas passage formed in the rotor and the stator ⁇ the space D between the outer periphery of the stator and the casing ⁇ the space A.
- a stand is installed (for example, Patent Document 1).
- Patent Document 1 The structure of the rotating electrical machine disclosed in Patent Document 1 requires that the entire rotating electrical machine be large in the width direction and requires a large installation area. For this reason, there exists a problem that the freedom degree of installation becomes low.
- the present invention has been made to solve the above-described problems, and can reduce the installation area and increase the degree of freedom of installation without deteriorating the cooling performance of the stator coil end.
- the purpose is to provide.
- a rotating electrical machine is disposed in a casing in which cooling gas is sealed, and includes a stator having a stator core, a stator coil, and stator coil ends at both ends of the stator coil, and a stator A rotor having a rotor core and a rotor coil mounted on the rotation shaft on the inner peripheral side through a gap, and mounted near both ends of the rotation shaft, the opposite side of the rotor coil is the intake side A fan that sucks cooling gas from the axial center side and sends it to the outer peripheral side, and a gas that is housed in a gas cooler chamber provided in the upper part of the casing where the stator coil end is located and is installed near the opening of the casing A space including a cooler, and a cooling gas sucked by a fan from a space A provided on an intake side of the fan includes a space B surrounding the fan, a gas cooler chamber, a gas cooler, and a stator coil end.
- the rotating electrical machine includes a gas cooler that is housed in a gas cooler chamber provided in the upper part of the casing where the stator coil end is located and is installed in the vicinity of the opening of the casing.
- Space A provided on the side ⁇ space B surrounding the fan ⁇ gas cooler chamber ⁇ gas cooler ⁇ space C including the stator coil end ⁇ formed between the rotor and stator, and formed in the rotor and stator Gas passage ⁇ space D between the outer periphery of the stator and the casing ⁇ space A and a gas circulation path through which cooling gas circulates are formed, and one gas cooler is installed above each stator coil end. Therefore, the cooling property of the stator coil end is not deteriorated, the installation area of the rotating electrical machine can be reduced, and the degree of freedom of installation can be increased.
- FIG. 1 is a plan sectional view according to a rotary electric machine according to Embodiment 1 of the present invention. It is side surface sectional drawing which concerns on the rotary electric machine of Embodiment 2 of this invention. It is front sectional drawing which concerns on the rotary electric machine of Embodiment 2 of this invention.
- Embodiment 1 FIG.
- one gas cooler is installed in each gas cooling chamber provided on the upper surface of the casing, the opening of the casing is provided directly above the stator coil end, and the space surrounding the stator coil end ( A partition wall that partitions the space C) and a cooling gas passage from the space (space D) between the outer periphery of the stator and the casing toward the intake side space (space A) of the fan; This relates to the secured rotating electrical machine.
- FIG. 1 is a side sectional view of a rotating electric machine
- FIG. 2 is a front sectional view of the rotating electric machine
- a plan sectional view of the rotating electric machine This will be described with reference to FIG.
- FIG. 1 is a cross-sectional view of a rotating electrical machine 1 according to Embodiment 1 of the present invention as viewed from the side, and shows a cross-sectional view of a vertical plane passing through the central axis of the rotor.
- FIG. 2 is a front cross-sectional view of the rotating electrical machine 1, and is a cross-sectional view as seen from II in FIG.
- FIG. 3 is a cross-sectional view of the rotating electrical machine 1 as viewed from above, and shows a horizontal cross-sectional view passing through the central axis of the rotor.
- Embodiment 1 of the present invention will be described below with reference to the drawings.
- the rotating electrical machine 1 includes a stator 3 disposed in a casing 2 in which a cooling gas is sealed, a rotor 4 installed on the inner peripheral side of the stator 3 via a predetermined gap, and a casing 2.
- a fan 12 for circulating the cooling gas and a gas cooler 14 for cooling the cooling gas are provided. These will be described in order below.
- the stator 3 includes a stator core 5 made of magnetic steel plates laminated in the axial direction, and a stator coil 6 inserted in a slot formed in the inner peripheral portion of the stator core 5. Are formed with gas passages (not shown) through which the cooling gas flows in the radial direction at predetermined intervals in the axial direction. Further, a main lead (not shown) is connected to the lower side of one (left side in the figure) of the stator coil end 7 on both ends of the stator coil 6 and is drawn out of the casing 2. The main lead is a conductor that extracts the generated power from the stator coil 6.
- the rotor 4 has an outer diameter capable of securing a predetermined gap 11 on the inner peripheral portion of the stator 3 and is rotatably arranged.
- the rotor 4 includes a rotating shaft 8, a rotor core 9 attached to the rotating shaft 8, and a rotor coil (not shown) inserted in a slot formed in the axial direction of the rotor core 9.
- both end portions of the rotating shaft 8 are rotatably supported by the bearing 10.
- the slot portion and the coil portion are provided with a gas passage (not shown) for cooling gas that extends in the axial direction and exits in the radial direction.
- a fan 12 is mounted inside the bearing 10 in the vicinity of both ends of the rotary shaft 8.
- the fan 12 is a type of fan that causes an air flow in the centrifugal direction, and circulates the cooling gas filled in the casing 2 in the casing 2.
- the opposite side (the side facing the bearing 10) of the main body portion where the rotor coil is located is the intake side, and the cooling gas is sucked from the axial center side and sent to the outer peripheral side.
- a water-cooled gas cooler 14 is attached to the upper surface of the casing 2 in the vicinity of the portion where the stator coil end 7 is located.
- the gas cooler 14 is housed in a sealed gas cooler chamber 13 provided on the upper surface of the casing 2, and is installed in the vicinity of the opening 15 on the upper surface of the casing 2. It is installed in a gas circulation passage for a cooling gas to be described later. Cooling gas is cooled by introducing cooling water from the outside into the gas cooler 14 and circulating it through an internal thin tube and exchanging heat through a large number of fins.
- An opening 15 of the casing 2 is provided directly above the stator coil end 7 as a passage for the cooling gas from the gas cooler 14 to a space (space C) surrounding the stator coil end 7 described later.
- the stator coil end 7 has coils arranged in a mesh shape, and becomes a resistance when the cooling gas passes therethrough. Accordingly, the cooling gas does not flow only at one location of the stator coil end 7, but first flows around the stator coil end 7 and then flows inward from all directions of the stator coil end 7. Thereby, it is possible to prevent only a part of the stator coil end 7 from being cooled.
- the cooling gas is not obstructed, and the gap 11 between the stator 3 and the rotor 4. And only a part of the stator coil end 7 is cooled. However, if the opening 15 through which the cooling gas from the gas cooler 14 passes and the stator coil end 7 are not displaced in the axial direction, the cooling gas hardly flows through the stator coil end 7 and the cooling gas is dispersed. To do. For this reason, the stator coil end 7 is uniformly cooled.
- a gas circulation passage is formed in the casing 2. Then, next, the structure of a channel
- the bearing 10 side of the fan 12 is partitioned by a partition plate, and a space A formed by the partition plate and the casing 2 (indicated by an alphabet in the drawing, the same applies hereinafter) is an intake side space of the fan 12.
- a partition plate is also provided on the rotor main body side of the fan 12, and a space B surrounding the fan 12 is formed. An opening is formed in the casing 2 above the space B and on the upper surface of the casing 2, and communicates with the gas cooler chamber 13.
- the cooling gas passes through the gas cooler 14 from the gas cooler chamber 13 and is sent to the stator coil end 7 side.
- the cooling gas from the fan 12 is first sent to the gas cooler 14 for cooling.
- the low-temperature cooling gas cooled with the gas cooler 14 is sent to the stator coil end 7 side from the nearest.
- the stator coil end 7 part is formed with a space C that partitions the outer peripheral part and surrounds the stator coil end 7 part.
- the cooling gas that has flowed into the space C flows into a gas passage (not shown) formed inside the rotor 4 and the gap 11 between the inner diameter portion of the stator 3 and the outer diameter portion of the rotor 4.
- the gas passes through a gas passage (not shown) and is discharged in the radial direction, and is sent to a space D formed between the outer periphery of the stator 3 and the casing 2.
- a circulation path is formed that is divided into both ends in the space D, is turned back toward the end of the casing 2, and returns to the space A.
- the cooling gas delivered from the right fan 12 circulates along a path formed in a similar (substantially symmetrical) manner.
- partition wall 17 which partitions the space C and the cooling gas passage from the space D to the space A will be described.
- partition walls 17 that partition the space C and the cooling gas passage from the space D to the space A are provided on both sides of the stator coil end 7.
- the partition wall 17 is located on the outside of the partition wall 17 with a sufficient passage 16 for the cooling gas from the space D to the space A.
- the cooling gas from the gas cooler 14 is received on the inside of the partition wall 17, the cooling gas from the gas cooler 14 is received.
- a passage that flows downward along the outer periphery of the stator coil end 7 is sufficiently secured. Further, an insulation distance between the partition wall 17 and the stator coil end 7 is secured.
- the fan 12 rotates as the rotor 4 rotates, and the cooling gas is sucked from the axial center side of the space A and sent out in the outer circumferential direction of the space B.
- Gas cooler chamber 13 ⁇ gas cooler 14 (cooling gas is cooled here) ⁇ opening 15 ⁇ space C ⁇ gas passage formed in gap 11 and rotor and stator ⁇ sent to space D, space It returns to the space A through the cooling gas passage 16 from D to the space A.
- one gas cooler 14 is installed on the upper surface of the casing 2 above the stator coil end 7, and the width of the casing 2 is narrower than that of the conventional structure. . If such a configuration is used simply, only the vicinity of the gas cooler outlet of the stator coil end is cooled, and there is a problem that it is not sufficiently cooled away from the gas cooler of the stator coil end.
- the invention of the first embodiment solves such a problem and reduces the installation area of the rotating electrical machine.
- the cooling gas exiting the gas cooler 14 passes through the opening 15 and enters the space C to cool the stator coil end 7.
- the opening 15 is provided directly above the stator coil end 7. Therefore, the cooling gas flows on the outer peripheral side of the stator coil end 7 and tends to flow inward from all directions of the stator coil end 7. Thereby, it is possible to prevent only a part of the stator coil end 7 from being cooled.
- a partition wall 17 that partitions the cooling gas passage is partitioned between the cooling gas passage from the space D to the space A and the space C, and between the partition wall 17 and the stator coil end 7. The insulation distance is secured. Thereby, a passage through which gas flows from the space D to the space A is secured.
- the rotating electrical machine of the first embodiment has one gas cooler installed in each gas cooling chamber provided on the upper surface of the casing, and the opening of the casing is provided directly above the stator coil end.
- the rotating electrical machine of the first embodiment can reduce the installation area, the apparatus can be miniaturized and the number of gas coolers can be reduced, so that energy saving and durability are improved.
- FIG. 1 The rotating electrical machine of the second embodiment has a structure in which a guide plate is installed under an opening in a space surrounding the stator coil end portion to disperse the flow of cooling gas from the gas cooler to the stator coil end portion. It is what.
- FIG. 4 is a side sectional view of the rotating electrical machine
- FIG. 5 which is a front sectional view of the rotating electrical machine.
- FIGS. 1 and 2 of the first embodiment are denoted by the same reference numerals.
- FIG. 4 is a cross-sectional view of rotary electric machine 100 according to Embodiment 2 of the present invention as viewed from the side, and shows a cross-sectional view of a vertical plane passing through the central axis of the rotor.
- FIG. 5 is a front cross-sectional view of the rotating electrical machine 100, and is a cross-sectional view seen from II in FIG.
- a sectional view of the rotating electrical machine 100 as viewed from above is the same as FIG. 3 of the first embodiment, and is omitted.
- a guide plate 21 is provided below the opening 15 in a space (space C) surrounding the stator coil end portion. That is.
- a guide plate 21 is provided on the downstream side of the opening 15 of the passage where the cooling gas is directed from the gas cooler 14 to the space C so that the cooling gas flows in a plurality of directions.
- FIG. 4 shows an example in which the guide plate 21 is fixed to the frame middle frame plate 22 partitioning the space C and the space D by bolts or welding.
- the guide plate 21 has an inclination angle with respect to the opening surface of the opening 15 so that the cooling gas flows in a plurality of directions.
- the shape and inclination angle of the guide plate 21 are determined in consideration of the capacity of the gas cooler 14 and the shape of the stator coil end 7 part.
- the cooling gas is not obstructed, and the gap 11 between the stator 3 and the rotor 4. And only a part of the stator coil end 7 is cooled.
- the cooling gas flows and is dispersed and fixed in a plurality of directions by installing the guide plate 21.
- the child coil end 7 is uniformly cooled.
- the gas circulation path of the rotating electrical machine 100 of the second embodiment is as follows. As the rotor 4 rotates, the fan 12 rotates, and the cooling gas is sucked in from the axial center side of the space A and sent out in the outer circumferential direction of the space B.
- the rotating electrical machine of the second embodiment has the guide plate provided under the opening in the space surrounding the stator coil end portion, and the cooling gas from the gas cooler to the stator coil end portion. It has a structure that disperses the flow. Accordingly, the installation area of the rotating electrical machine can be reduced without deteriorating the cooling performance of the stator coil end. Moreover, the rotary electric machine of Embodiment 2 can further improve the cooling performance of the stator coil end.
- This invention relates to a rotating electrical machine that can reduce the installation area without deteriorating the cooling performance of the stator coil end, and can be widely applied to turbine generators and the like.
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Abstract
Description
実施の形態1は、ケーシングの上面に設けたガス冷却室内にガス冷却器を各1台設置し、ケーシングの開口部を固定子コイルエンドの真上に設け、固定子コイルエンド部を囲む空間(空間C)と、固定子外周とケーシングとの間の空間(空間D)からファンの吸気側空間(空間A)へと向かう冷却ガスの通路とを仕切る仕切壁を設けて、冷却ガスの通路を確保した回転電機に関するものである。
図2は、回転電機1の正面断面図であり、図1のI-Iから見た断面図である。
図3は、回転電機1を上面から見た断面図であり、回転子の中心軸を通る水平面の断面図を示している。
回転電機1は、冷却ガスが封入されたケーシング2内に配設された固定子3と、固定子3の内周側に所定の間隙を介して設置された回転子4と、ケーシング2内に冷却ガスを循環させるファン12と、冷却ガスを冷却するガス冷却器14とを備えている。以下これらを順に説明する。
また、固定子コイル6の両端側の固定子コイルエンド7の一方(図では左方)の下部側にはメインリード(図示せず)が接続され、ケーシング2の外部に引き出されている。メインリードは、発電された電力を固定子コイル6から取り出す導体である。
図1に示すように、ガス冷却器14は、ケーシング2の上面に設けられた密閉されたガス冷却器室13に収容されて、ケーシング2の上面の開口部15の近傍に設置されており、後述する冷却ガスのガス循環通路内に設置されている。ガス冷却器14に外部から冷却水を導入して内部の細管に循環させ、多数のフィンを介して熱交換されて冷却ガスが冷却されるようになっている。
冷却ガスがガス冷却器14から後述する固定子コイルエンド7部を囲む空間(空間C)へ向かう通路としてのケーシング2の開口部15を、固定子コイルエンド7の真上に設ける。固定子コイルエンド7はコイルが網目状に配置されており、そこを冷却ガスが通過するとき、抵抗になる。したがって冷却ガスは固定子コイルエンド7の1ケ所のみを集中して流れることなく、まず固定子コイルエンド7の周囲を流れてから、固定子コイルエンド7の全方向から内側へ流れようとする。これにより固定子コイルエンド7の一部のみが冷却されることを防ぐことができる。
もし、ガス冷却器14からの冷却ガスが通過する開口部15と固定子コイルエンド7が軸方向にずれていると、冷却ガスは遮るものがなく、固定子3と回転子4との間隙11に直接流れ込み、固定子コイルエンド7の一部しか冷却されない。
しかし、ガス冷却器14からの冷却ガスが通過する開口部15と固定子コイルエンド7が軸方向にずれがないと、冷却ガスは固定子コイルエンド7を貫通して流れにくく、冷却ガスは分散する。このため、固定子コイルエンド7は均一に冷却される。
ファン12の軸受10側を仕切板で仕切り、この仕切板とケーシング2とで形成される空間A(図中にアルファベットで示す。以下同様。)がファン12の吸気側空間となる。ファン12の回転子本体側にも仕切板が設けられ、ファン12の周囲を囲む空間Bが形成されている。空間Bの上方、ケーシング2の上面には、ケーシング2に開口部が形成されており、ガス冷却器室13に連通している。ガス冷却器14は、ケーシング2上面の開口部15の近傍に設置されているので、冷却ガスはガス冷却器室13からガス冷却器14を通過して固定子コイルエンド7側に送出される。
上記のように、ファン12からの冷却ガスは、先ずガス冷却器14へ送出して冷却する方式を採用している。そして、ガス冷却器14で冷却された低温の冷却ガスを直近から固定子コイルエンド7側へ送出している。
右側のファン12から送出される冷却ガスも同様(ほぼ対称)に形成された経路をたどって循環する。
固定子コイルエンド7の両側に、空間Cと空間Dから空間Aへと向かう冷却ガスの通路とを仕切る仕切壁17が設けられている。この仕切壁17の位置は、仕切壁17の外側は空間Dから空間Aへと向かう冷却ガスの通路16が十分に確保され、仕切壁17の内側は、ガス冷却器14から来た冷却ガスが固定子コイルエンド7の外周を沿って下側に流れる通路が十分に確保されている。さらに、仕切壁17と固定子コイルエンド7との絶縁距離が確保されている。
単純にこのような構成にしたのでは、固定子コイルエンドのガス冷却器出口周辺のみが冷却され、固定子コイルエンドのガス冷却器から離れたところでは、十分に冷却されないという問題がおこる。実施の形態1の発明は、このような問題を解決したうえで、回転電機の設置面積を小さくするものである。
さらに、空間Dから空間Aへと向かう冷却ガスの通路と空間Cとの間を、冷却ガスの通路を仕切る仕切壁17が仕切っており、この仕切壁17と固定子コイルエンド7との間には絶縁距離が確保されている。これにより、空間Dから空間Aへガスが流れる通路が確保されている。
実施の形態2の回転電機は、固定子コイルエンド部を囲む空間内の開口部の下に案内板を設置して、ガス冷却器から固定子コイルエンド部への冷却ガスの流れを分散させる構造としたものである。
図4、5において、実施の形態1の図1、2と同一あるいは相当部分は、同一の符号を付している。
図5は、回転電機100の正面断面図であり、図4のI-Iから見た断面図である。
回転電機100を上面から見た断面図は、実施の形態1の図3と同じであるため省略している。
図4では、案内板21は、空間Cと空間Dを仕切るフレーム中枠板22にボルトまたは溶接で固定した例を示している。
案内板21は、冷却ガスが複数の方向に向かって流れるように、開口部15の開口面に対して傾斜角度を有している。案内板21の形状および傾斜角度は、ガス冷却器14の容量や固定子コイルエンド7部の形状などを考慮して、決定される。
このように、ガス冷却器14の出口と固定子コイルエンド7が軸方向にずれがある場合でも、案内板21を設置することで、冷却ガスは複数の方向に向かって流れて分散され、固定子コイルエンド7は均一に冷却される。
また、実施の形態2の回転電機は、固定子コイルエンドの冷却性をさらに向上させることができる。
Claims (6)
- 冷却ガスが封入されたケーシング内に配設され、固定子鉄心と固定子コイルと前記固定子コイルの両端部の固定子コイルエンドとを有する固定子と、
前記固定子の内周側に空隙を介して配置され、回転軸に装着された回転子鉄心及び回転子コイルを有する回転子と、
前記回転軸の両端部付近に装着され、前記回転子コイルの反対側を吸気側とし冷却ガスを軸心側から吸気して外周側に送出するファンと、
前記固定子コイルエンドが位置する前記ケーシングの上部に設けられたガス冷却器室に収容され前記ケーシングの開口部の近傍に設置されたガス冷却器とを備え、
前記ファンの前記吸気側に設けられた空間Aから前記ファンにより吸気された前記冷却ガスが、前記ファンの周囲を囲む空間B→前記ガス冷却器室→前記ガス冷却器→前記固定子コイルエンドを含む空間C→前記回転子と前記固定子との間隙及び前記回転子と前記固定子に形成されたガス通路→前記固定子の外周と前記ケーシングとの間の空間D→前記空間Aと循環するガス循環経路が形成され、
前記ガス冷却器が前記各固定子コイルエンドの上部に各1台設置されている回転電機。 - 前記冷却ガスが前記ガス冷却器から前記空間Cへ向かう経路に設けられた前記ケーシングの前記開口部が、前記固定子コイルエンドの真上に設けられている請求項1に記載の回転電機。
- 前記ガス冷却器から前記空間Cへのガス通路において、前記ケーシングの前記開口部の下流側に、前記冷却ガスを複数の方向に向かって流すために前記開口部の開口面に対して傾斜角度を有する案内板を設けた請求項1に記載の回転電機。
- 前記ガス冷却器から前記空間Cへのガス通路において、前記ケーシングの前記開口部の下流側に、前記冷却ガスを複数の方向に向かって流すために前記開口部の開口面に対して傾斜角度を有する案内板を設けた請求項2に記載の回転電機。
- 前記固定子コイルエンドの両側に、前記空間Cと、前記空間Dから前記空間Aへと向かう前記冷却ガスのガス通路とを仕切る仕切壁を設けた請求項1からの請求項4のいずれか1項に記載の回転電機
- 前記仕切壁の外側は前記空間Dから前記空間Aへと向かう前記冷却ガスのガス通路を確保し、前記仕切壁の内側は前記ガス冷却器から流出された前記冷却ガスが前記固定子コイルエンドの外周を沿って下側に流れるガス通路を確保し、かつ、前記固定子コイルエンドとの絶縁距離を確保する位置に前記仕切壁を設けた請求項5に記載の回転電機。
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CN201480083324.4A CN107078603B (zh) | 2014-11-18 | 2014-11-18 | 旋转电机 |
EP14906287.9A EP3223406B1 (en) | 2014-11-18 | 2014-11-18 | Rotary electric machine |
US15/322,579 US10404138B2 (en) | 2014-11-18 | 2014-11-18 | Rotary electric machine having gas coolers |
PCT/JP2014/080501 WO2016079806A1 (ja) | 2014-11-18 | 2014-11-18 | 回転電機 |
JP2016559724A JP6246388B2 (ja) | 2014-11-18 | 2014-11-18 | 回転電機 |
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PCT/JP2014/080501 WO2016079806A1 (ja) | 2014-11-18 | 2014-11-18 | 回転電機 |
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EP (1) | EP3223406B1 (ja) |
JP (1) | JP6246388B2 (ja) |
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GB2544275B (en) * | 2015-11-09 | 2022-02-16 | Time To Act Ltd | Cooling means for direct drive generators |
CN110545012A (zh) * | 2018-05-29 | 2019-12-06 | 中车株洲电力机车研究所有限公司 | 一种全封闭自然冷却牵引电机 |
CN109546792A (zh) * | 2018-12-04 | 2019-03-29 | 深圳先进技术研究院 | 一种电机 |
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2014
- 2014-11-18 EP EP14906287.9A patent/EP3223406B1/en active Active
- 2014-11-18 WO PCT/JP2014/080501 patent/WO2016079806A1/ja active Application Filing
- 2014-11-18 CN CN201480083324.4A patent/CN107078603B/zh active Active
- 2014-11-18 US US15/322,579 patent/US10404138B2/en active Active
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WO2002071577A1 (fr) * | 2001-03-07 | 2002-09-12 | Hitachi, Ltd. | Machine electrique rotative |
JP2007089255A (ja) * | 2005-09-20 | 2007-04-05 | Mitsubishi Electric Corp | 回転電機 |
JP5388961B2 (ja) * | 2010-07-21 | 2014-01-15 | 三菱電機株式会社 | 回転電機 |
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EP3223406B1 (en) | 2021-03-24 |
US20170141651A1 (en) | 2017-05-18 |
EP3223406A4 (en) | 2018-06-27 |
CN107078603A (zh) | 2017-08-18 |
US10404138B2 (en) | 2019-09-03 |
CN107078603B (zh) | 2019-11-05 |
JPWO2016079806A1 (ja) | 2017-04-27 |
EP3223406A1 (en) | 2017-09-27 |
JP6246388B2 (ja) | 2017-12-13 |
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