US20170235337A1 - Electronic apparatus comprising two casing coupled together with two-parallel-axis hinge - Google Patents
Electronic apparatus comprising two casing coupled together with two-parallel-axis hinge Download PDFInfo
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- US20170235337A1 US20170235337A1 US15/429,995 US201715429995A US2017235337A1 US 20170235337 A1 US20170235337 A1 US 20170235337A1 US 201715429995 A US201715429995 A US 201715429995A US 2017235337 A1 US2017235337 A1 US 2017235337A1
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- 230000005540 biological transmission Effects 0.000 claims abstract description 31
- 230000008859 change Effects 0.000 claims description 14
- 230000008878 coupling Effects 0.000 claims description 11
- 238000010168 coupling process Methods 0.000 claims description 11
- 238000005859 coupling reaction Methods 0.000 claims description 11
- 230000001154 acute effect Effects 0.000 claims description 7
- 238000000034 method Methods 0.000 description 6
- 230000008569 process Effects 0.000 description 6
- 230000007246 mechanism Effects 0.000 description 4
- 230000001131 transforming effect Effects 0.000 description 4
- 238000005219 brazing Methods 0.000 description 2
- 239000000470 constituent Substances 0.000 description 2
- 238000010586 diagram Methods 0.000 description 2
- 230000008901 benefit Effects 0.000 description 1
- 238000004519 manufacturing process Methods 0.000 description 1
- 239000003550 marker Substances 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
- 230000002093 peripheral effect Effects 0.000 description 1
- 238000006467 substitution reaction Methods 0.000 description 1
- 230000001629 suppression Effects 0.000 description 1
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Classifications
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F1/00—Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
- G06F1/16—Constructional details or arrangements
- G06F1/1613—Constructional details or arrangements for portable computers
- G06F1/1615—Constructional details or arrangements for portable computers with several enclosures having relative motions, each enclosure supporting at least one I/O or computing function
- G06F1/1616—Constructional details or arrangements for portable computers with several enclosures having relative motions, each enclosure supporting at least one I/O or computing function with folding flat displays, e.g. laptop computers or notebooks having a clamshell configuration, with body parts pivoting to an open position around an axis parallel to the plane they define in closed position
- G06F1/1618—Constructional details or arrangements for portable computers with several enclosures having relative motions, each enclosure supporting at least one I/O or computing function with folding flat displays, e.g. laptop computers or notebooks having a clamshell configuration, with body parts pivoting to an open position around an axis parallel to the plane they define in closed position the display being foldable up to the back of the other housing with a single degree of freedom, e.g. by 360° rotation over the axis defined by the rear edge of the base enclosure
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- E—FIXED CONSTRUCTIONS
- E05—LOCKS; KEYS; WINDOW OR DOOR FITTINGS; SAFES
- E05D—HINGES OR SUSPENSION DEVICES FOR DOORS, WINDOWS OR WINGS
- E05D11/00—Additional features or accessories of hinges
-
- E—FIXED CONSTRUCTIONS
- E05—LOCKS; KEYS; WINDOW OR DOOR FITTINGS; SAFES
- E05D—HINGES OR SUSPENSION DEVICES FOR DOORS, WINDOWS OR WINGS
- E05D11/00—Additional features or accessories of hinges
- E05D11/0054—Covers, e.g. for protection
-
- E—FIXED CONSTRUCTIONS
- E05—LOCKS; KEYS; WINDOW OR DOOR FITTINGS; SAFES
- E05D—HINGES OR SUSPENSION DEVICES FOR DOORS, WINDOWS OR WINGS
- E05D3/00—Hinges with pins
- E05D3/06—Hinges with pins with two or more pins
-
- E—FIXED CONSTRUCTIONS
- E05—LOCKS; KEYS; WINDOW OR DOOR FITTINGS; SAFES
- E05D—HINGES OR SUSPENSION DEVICES FOR DOORS, WINDOWS OR WINGS
- E05D3/00—Hinges with pins
- E05D3/06—Hinges with pins with two or more pins
- E05D3/12—Hinges with pins with two or more pins with two parallel pins and one arm
-
- E—FIXED CONSTRUCTIONS
- E05—LOCKS; KEYS; WINDOW OR DOOR FITTINGS; SAFES
- E05D—HINGES OR SUSPENSION DEVICES FOR DOORS, WINDOWS OR WINGS
- E05D3/00—Hinges with pins
- E05D3/06—Hinges with pins with two or more pins
- E05D3/12—Hinges with pins with two or more pins with two parallel pins and one arm
- E05D3/122—Gear hinges
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F1/00—Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
- G06F1/16—Constructional details or arrangements
- G06F1/1613—Constructional details or arrangements for portable computers
- G06F1/1633—Constructional details or arrangements of portable computers not specific to the type of enclosures covered by groups G06F1/1615 - G06F1/1626
- G06F1/1675—Miscellaneous details related to the relative movement between the different enclosures or enclosure parts
- G06F1/1681—Details related solely to hinges
-
- E—FIXED CONSTRUCTIONS
- E05—LOCKS; KEYS; WINDOW OR DOOR FITTINGS; SAFES
- E05D—HINGES OR SUSPENSION DEVICES FOR DOORS, WINDOWS OR WINGS
- E05D11/00—Additional features or accessories of hinges
- E05D11/08—Friction devices between relatively-movable hinge parts
- E05D11/087—Friction devices between relatively-movable hinge parts with substantially axial friction, e.g. friction disks
-
- E—FIXED CONSTRUCTIONS
- E05—LOCKS; KEYS; WINDOW OR DOOR FITTINGS; SAFES
- E05Y—INDEXING SCHEME ASSOCIATED WITH SUBCLASSES E05D AND E05F, RELATING TO CONSTRUCTION ELEMENTS, ELECTRIC CONTROL, POWER SUPPLY, POWER SIGNAL OR TRANSMISSION, USER INTERFACES, MOUNTING OR COUPLING, DETAILS, ACCESSORIES, AUXILIARY OPERATIONS NOT OTHERWISE PROVIDED FOR, APPLICATION THEREOF
- E05Y2999/00—Subject-matter not otherwise provided for in this subclass
Definitions
- Embodiments described herein relate generally to an electronic apparatus including two casings coupled together with two-parallel-axis hinges and transforming from a clamshell mode to a tablet mode.
- a gear mechanism is provided between shafts disposed to have two axes such that two-axis hinges equally rotate.
- the gear mechanism is simple when the two casings have the same thickness when the two casing are superimposed.
- gear mechanism is complicated when the two casings have different thicknesses.
- a more complicated gear mechanism is required to rotate one casing by 360° to the rear side of the other casing from a state where the two casings are superimposed on each other.
- FIG. 1 is an exemplary perspective view of an electronic apparatus according to a first embodiment
- FIG. 2 is an exemplary enlarged perspective view of a hinge of the electronic apparatus of FIG. 1 ;
- FIG. 3 is an exemplary exploded perspective view of the hinge of FIG. 2 ;
- FIG. 4 is an exemplary side view of the hinge of FIG. 2 as viewed in a direction along a rotation axis;
- FIG. 5 is an exemplary side view illustrating a state in which the hinge of FIG. 4 transforms from a first state to a second state in a stepped manner;
- FIG. 6 is an exemplary perspective view illustrating movement of gears of the hinge of FIG. 4 ;
- FIG. 7 is an exemplary perspective view in which the electronic apparatus of FIG. 1 is transformed from the first state to the second state in a stepped manner;
- FIG. 8 is an exemplary perspective view of the hinge corresponding to the electronic apparatus of FIG. 7 ;
- FIG. 9 is an exemplary enlarged perspective view of a hinge of an electronic apparatus according to a second embodiment
- FIG. 10 is an exemplary side view illustrating a gear train inside the hinge of FIG. 9 ;
- FIG. 11 is an exemplary side view illustrating movement of the hinge when the electronic apparatus of FIG. 9 is transformed from a first state to a second state;
- FIG. 12 is an exemplary perspective view illustrating a hinge of an electronic apparatus according to a third embodiment
- FIG. 13 is an exemplary side view illustrating a gear train inside the hinge of FIG. 12 ;
- FIG. 14 is an exemplary exploded perspective view of the hinge of FIG. 12 ;
- FIG. 15 is an exemplary perspective view of a hinge of an electronic apparatus according to a fourth embodiment
- FIG. 16 is an exemplary development of cylindrical surfaces of rollers of the hinge of FIG. 15 ;
- FIG. 17 is an exemplary perspective view illustrating movement of the hinge when the hinge of FIG. 15 is transformed from a first state to a second state of the electronic apparatus;
- FIG. 18 is an exemplary perspective view of a hinge of an electronic apparatus according to a fifth embodiment
- FIG. 19 is an exemplary development of cylindrical surfaces of rollers of the hinge of FIG. 18 ;
- FIG. 20 is an exemplary perspective view illustrating movement of the hinge when the hinge of FIG. 18 is transformed from a first state to a second state of the electronic apparatus.
- an electronic apparatus comprises a first casing, a second casing, and a hinge.
- the first casing includes a first surface and a second surface opposite to the first surface.
- the second casing includes a third surface and a fourth surface opposite to the third surface.
- the hinge couples the first casing with the second casing continuously rotatably from a first state to a second state.
- the first state is a state in which the first casing and the second casing are superimposed with the third surface caused to face the first surface.
- the second state is a state in which the first casing and the second surface are superimposed with the fourth surface caused to face the second surface.
- the hinge includes a first shaft, a first rotation engaging portion, a second shaft, a second rotation engaging portion, a housing, and a transmission unit.
- the first shaft is fixed to the first casing.
- the first rotation engaging portion is fixed to the first shaft.
- the second shaft is fixed to the second casing.
- the second rotation engaging portion is fixed to the second shaft.
- the housing holds the first shaft and the second shaft in parallel.
- the transmission unit links rotation angles of the first rotation engaging portion and the second rotation engaging portion with respect to the housing from the first state to the second state.
- the transmission unit links the first rotation engaging portion and the second rotation engaging portion such that a line segment connecting a center of the first shaft with a center of the second shaft in a radial direction makes an acute angle with the first surface and the second surface of the first casing and makes an obtuse angle with the third surface and the fourth surface of the second casing in either of the first state and the second state.
- the electronic apparatus has a structure in which the first casing and the second casing are coupled with a hinge such that the first casing and the second casing continuously rotate, and is transformed from the first state to the second state. Specifically, this means that the second casing is rotated by 360° with respect to the first casing, and the first casing is rotated by 360° with respect to the second casing.
- the feature that the first casing makes an acute angle with the line segment connecting the center of the first shaft with the center of the second shaft in either of the first state and the second state means that the rotation angle of the first casing transforming from the first state to the second state with respect to the line segment connecting the center of the first shaft with the center of the second shaft is 180° or more.
- the feature that the second casing makes an obtuse angle with the line segment connecting the center of the first shaft with the center of the second shaft in either of the first state and the second state means that the rotation angle of the second casing transforming from the first state to the second state with respect to the line segment connecting the center of the first shaft with the center of the second shaft is 180° or less.
- the rotation angle of the first casing from the first state to the second state is larger than a rotation angle of the second casing.
- the ratio of the rotation angle of the second rotation engaging portion is smaller than the rotation angle of the first rotation engaging portion.
- the rotation speed of the first casing with respect to the housing is faster than the rotation speed of the second casing.
- the electronic apparatus 1 illustrated in FIG. 1 has a structure in which a main body serving as a first casing 21 is connected with a display unit serving as a second casing 22 with hinges 3 .
- the electronic apparatus 1 can be used in two forms, that is, a clamshell mode in which the electronic apparatus 1 is used in a state where the first casing 21 is placed on a desktop or the like and the second casing 22 is raised with respect to the first casing 21 , and a tablet mode in which the electronic apparatus 1 is used in a state where the first casing 21 and the second casing 22 are superimposed with the display surface of the second casing 22 facing front to enable a user to perform an input operation by directly touching the display surface of the second casing 22 with a pen or a finger.
- the electronic apparatus 1 in the clamshell mode is illustrated in FIG. 1 .
- the electronic apparatus 1 in the tablet mode is illustrated on the rightmost side in FIG. 7 .
- the electronic apparatus 1 includes the first casing 21 , the second casing 22 , and the hinges 3 .
- the first casing 21 includes a first surface 21 A on which a keyboard serving as an input unit in the clamshell mode is provided, and a second surface 21 B opposite to the first surface 21 A and serving as a bottom surface when placed on a desktop in the clamshell mode.
- the second casing 22 includes a third surface 22 A serving as a display surface in the clamshell mode and serving as a display surface and an input surface in the tablet mode, and a fourth surface 22 B located on a back surface opposite to the third surface 22 A and serving as a cover.
- the parts “front”, “rear”, “right”, and “left” are defined based on the user who views the third surface 22 A of the second casing 22 in the clamshell mode illustrated in FIG. 1 from the front, and may be referred to as “front side”, “rear side”, “right side”, and “left side”, respectively, to easily specify the region of the electronic apparatus 1 .
- FIG. 2 is an enlarged perspective view of the hinge 3 of the electronic apparatus 1 in the clamshell mode.
- FIG. 3 is an exploded perspective view of the hinge 3 of FIG. 2
- FIG. 4 is a side view of the hinge 3 of FIG. 2 from the right.
- the hinges 3 are arranged in the right rear and the left rear of the first casing 21 .
- the right hinge 3 is illustrated in FIG. 2 and FIG. 3
- the left hinge 3 has a left-and-right mirror-image structure with respect to the right hinge 3 .
- the hinge 3 includes a first shaft 31 , a first rotation engaging portion 41 , a second shaft 32 , a second rotation engaging portion 42 , a housing 5 , and a transmission unit 6 , as illustrated in FIG. 2 and FIG. 3 .
- the first shaft 1 is disposed along the rear edge of the first casing 21 , and fixed to the first casing 21 through a plate 311 extending along the inside of the first casing 21 in a radial direction.
- the first shaft 31 is rotated together with rotation of the first casing 21 .
- the first rotation engaging portion 41 is coaxially attached to the first shaft 31 , and fastened to the first shaft 31 by keying, brazing, or press fit.
- the second shaft 32 is disposed along the rear edge of the second casing 22 , and fixed to the second casing 22 through a plate 321 extending along the inside of the second casing 22 in a radial direction.
- the second rotation engaging portion 42 is coaxially attached to the second shaft 32 , and fastened to the second shaft 32 by keying, brazing, or press fit.
- the transmission unit 6 to transmit rotational force is disposed between the first rotation engaging portion 41 and the second rotation engaging portion 42 , to link the rotation angles of the first rotation engaging portion 41 and the second rotation engaging portion 42 .
- the first rotation engaging portion 41 , the second rotation engaging portion 42 , and the transmission unit 6 serve as helical gears including helical teeth.
- the pitch of a first helical gear 41 H serving as the first rotation engaging portion 41 and the pitch of a second helical gear 42 H serving as the second rotation engaging portion 42 have inclination in the same direction as that of a right-hand screw.
- a third helical gear 61 H serving as the transmission unit 6 has helical teeth of a right-hand screw like the first helical gear 41 H and the second helical gear 42 H.
- the third helical gear 61 H is disposed between the first helical gear 41 H and the second helical gear 42 H in a direction orthogonal to the rotation center line, and engaged with the first helical gear 41 H and the second helical gear 42 H. In this manner, the third helical gear 61 H links the rotation direction of the second helical gear 42 H oppositely with the rotation direction of the first helical gear 41 H.
- the housing 5 holds the first shaft 31 and the second shaft 32 in parallel.
- the housing 5 includes coupling plates 51 and 52 coupling both sides of the first rotation engaging portion 41 and the second rotating engaging portion 42 in a direction along the first shaft 31 and the second shaft 32 , and support pieces 53 and 54 holding the third helical gear 61 H between the first helical gear 41 H and the second helical gear 42 H.
- the support pieces 53 and 54 are formed continuously with the coupling plate 52 .
- One support piece 53 may be formed continuously with the coupling plate 51
- the other support piece 54 may be formed continuously with the coupling plate 52 .
- the coupling plate 51 is omitted, to enable easy recognition of the relation between the first helical gear 41 H, the second helical gear 42 H, and the third helical gear 61 H.
- a marker M that is not actually provided is illustrated to enable easy recognition of the rotation angle of the third helical gear 61 H, with respect to rotation of the first helical gear and the second helical gear 42 H caused by rotation of the first shaft 31 and the second shaft 32 .
- Each of the first shaft 31 and the second shaft 32 extending through the coupling plate 52 and extending in a direction opposite to the first helical gear 41 H and the second helical gear 42 H includes a friction portion 33 consisted of a disc spring and a washer generating rotation resistance to stop at a desired rotation angle with respect to the coupling plate 52 , as illustrated in FIG. 2 and FIG. 3 .
- the rotation resistance generated by the friction portions 33 is caused by a fastening force of nuts 34 screwed at respective end portions of the first shaft 31 and the second shaft 32 .
- a hinge case 23 covers the first helical gear 41 H, the second helical gear 42 H, the housing 5 (coupling plates 51 and 52 and support pieces 53 and 54 ), the friction portions 33 , and the nuts 34 of the hinge 3 .
- the first casing 21 has a first size T 1 from the first surface 21 A to the second surface 21 B
- the second casing 22 has a second size T 2 from the third surface 22 A to the fourth surface 22 B.
- the second size T 2 is smaller than the first size T 1 .
- the external diameter of the second helical gear 42 H is larger than the external diameter of the first helical gear 41 H, that is, the second helical gear 42 H has the larger number of teeth of the helical gear than that of the first helical gear 41 H.
- An engaging radius R 1 of the first helical gear 41 H is smaller than an engaging radius R 2 of the second helical gear 42 H.
- the hinges 3 couple the second casing 22 with the first casing 21 such that the second casing 22 is continuously rotatable with respect to the first casing 21 , from a first state P 1 in which the first casing 21 is superimposed on the second casing 22 with the third surface 22 A facing the first surface 21 A, to a second state P 2 in which the first casing 21 is superimposed on the second casing 22 with the fourth surface 22 B facing the second surface 21 B.
- FIG. 4 is a side view of the hinge 3 in the case where the electronic apparatus 1 is used in the clamshell mode
- FIG. 5 illustrates a process in which the second casing 22 is rotated from the first state P 1 to the second state P 2 based on the first casing 21 in a stepped manner.
- the hinge 3 in the first state P 1 is illustrated uppermost
- the hinge 3 in the second state P 2 is illustrated lowermost.
- FIG. 6 is a perspective view of the right hinge as viewed from the right front in a state where the first casing and the second casing are disposed in a straight line, during a process in which the electronic apparatus is transformed from the first state P 1 to the second state P 2 .
- FIG. 7 is a perspective view in which the electronic apparatus 1 is transformed from the first state P 1 to the second state P 2 in a stepped manner.
- the electronic apparatus 1 in the first state P 1 is illustrated in the leftmost part in FIG. 7
- the electronic apparatus 1 in the second state P 2 is illustrated in the rightmost part in FIG. 7 .
- FIG. 8 is a perspective view of a process in which the electronic apparatus 1 is transformed from the first state P 1 to the second state P 2 like FIG. 7 , based on the hinges 3 .
- FIG. 7 and FIG. 8 illustrate the first casing 21 and the second casing 22 that are rotated based on the hinges 3 , to enable easy recognition of the rotation angles of the first casing 21 and the second casing 22 with respect to the hinges 3 .
- the third helical gear 61 H serving as the transmission unit 6 is engaged with the first helical gear 41 H and the second helical gear 42 H, such that a line segment C connecting the center A of the first shaft 31 with the center B of the second shaft 32 makes an acute angle with the first casing 21 and makes an obtuse angle with the second casing 22 .
- An engaging radius R 3 of the third helical gear 61 H may agree with, or disagree with, one of the engaging radius R 1 of the first helical gear 41 H and the engaging radius R 2 of the second helical gear 42 H.
- the engaging radius R 3 of the third helical gear 61 H is set between the engaging radius R 1 of the first helical gear 41 H and the engaging radius R 2 of the second helical gear 42 H.
- the engaging radius R 3 of the third helical gear 61 H is set equal to the engaging radius R 2 of the second helical gear 42 H.
- the electronic apparatus 1 is in the state in which the first casing 21 , the hinge case 23 , and the second casing 22 extend in a straight line.
- the second casing 22 is rotated with respect to the first casing 21 from the first state P 1 to the second state P 2 as illustrated in FIG.
- an angle ⁇ 1 at which the first casing 21 is rotated with respect to the line segment C (or hinge case 23 ) connecting the center A of the first shaft 31 with the center B of the second shaft 32 is larger than an angle ⁇ 2 at which the second casing 22 is rotated with respect to the line segment C (or hinge case 23 ), as illustrated in FIG. 7 and FIG. 8 .
- the rotation speed of the first shaft 31 with respect to the line segment C is faster than the rotation speed of the second shaft 32 .
- the second size T 2 being the thickness of the second casing 22 is smaller than the first size T 1 being the thickness of the first casing 21 , and the line segment C makes an acute angle with the first casing 21 , and the line segment C makes an obtuse angle with the second casing 22 , with respect to the line segment C connecting the center A of the first shaft 31 with the center B of the second shaft 32 in either of the first state P 1 and the second state P 2 .
- the rear end of the second casing 22 is positioned on a slightly more front side than the rear end of the first casing 21 .
- the electronic apparatus 1 structured as described above satisfies the following conditions in operations of the hinges 3 .
- time t 1 with which the first helical gear 41 H is rotated by angle ⁇ 1 is the same as time t 2 with which the second helical gear 42 H is rotated by angle ⁇ 2 , both of them is referred to as rotation time t.
- ⁇ 1 is an angular velocity at the time when the first helical gear 41 H is rotated
- ⁇ 2 is an angular velocity at the time when the second helical gear 42 H is rotated
- N 1 is the number of teeth of the first helical gear 41 H and N 2 is the number of teeth of the second helical gear 42 H, the relation of Expression (3) is obtained.
- N 1 and N 2 is an integer.
- the second casing 22 is enabled to rotate by 360° with respect to the first casing 21 , from the first state P 1 illustrated in the uppermost part in FIG. 5 to the second state P 2 illustrated in the lowermost part in FIG. 5 , through the state in which the first casing 21 is aligned flat with the second casing 22 as illustrated in the middle part in FIG. 5 .
- the front edge of the first casing 21 matches with the front edge of the second casing 22 in both the first state P 1 and the second state P 2 .
- the first rotation engaging portion 41 of the first shaft 31 is linked with the second rotation engaging portion 42 of the second shaft 32 with the transmission unit 6 , the first casing 21 and the second casing 22 are smoothly rotated in an equal ratio when the electronic apparatus 1 is transformed from the first state P 1 through the clamshell mode to the second state P 2 being the tablet mode, or conversely from the second state P 2 to the first state P 1 .
- the first rotation engaging portion 41 , the second rotation engaging portion 42 , and the transmission unit 6 are the first helical gear 41 H, the second helical gear 42 H, and the third helical gear 61 H, respectively, the electronic apparatus 1 requires a small number of components, and prevents bulkiness of the hinges 3 .
- the second size T 2 of the second casing 22 is smaller than the first size T 1 of the first casing 21 , and the first casing 21 is disposed at an acute angle with respect to the line segment C connecting the center A of the first shaft 31 with the center B of the second shaft 32 in either of the first state P 1 and the second state P 2 .
- the rear edge of the second casing 22 is disposed on a more front side than the rear edge of the first casing 21 . Accordingly, when the electronic apparatus 1 is used in the clamshell mode as in FIG. 1 , the rear edge of the first casing is not blocked with the second casing 22 as illustrated in FIG. 4 .
- This structure enables use of the rear edge of the first casing to be provided with an air intake and an air outlet to discharge heat generated inside the first casing 21 , or provided with a terminal to be connected with a peripheral device.
- FIG. 9 is a perspective view illustrating the right hinge 3 of the electronic apparatus 1 in the first state Pl
- FIG. 10 illustrates a side view of the hinge 3 as viewed from the right in a direction along the first shaft 31 and the second shaft 32
- FIG. 11 illustrates a process of transforming the electronic apparatus 1 of FIG. 10 in shape in a stepped manner, from the first state P 1 to the second state P 2 , or the second state P 2 to the first state P 1 .
- the first state P 1 is illustrated in the leftmost part
- the second state P 2 is illustrated in the rightmost part.
- FIG. 11 illustrate a gear train G configured of a first spur gear 41 G, a second spur gear 42 G, and third spur gears 61 G, and plates 311 and 321 attached to the first shaft 31 and the second shaft 32 , respectively, to enable easy understanding of each of the spur gears inside the hinge 3 .
- the electronic apparatus 1 has a structure in which the second size T 2 of the second casing 22 is smaller than the first size T 1 of the first casing 21 as illustrated in FIG. 1 .
- each hinge 3 of the electronic apparatus 1 includes the first spur gear 41 G as the first rotation engaging portion 41 fixed to the first shaft 31 , and the second spur gear 42 G having an external diameter larger than an external diameter of the first spur gear 41 G and serving as the second rotation engaging portion 42 fixed to the second shaft 32 .
- the hinge 3 includes at least two third spur gears 61 G serving as the transmission unit 6 linking the first spur gear 41 G with the second spur gear 42 G.
- the third spur gears 61 G are arranged in parallel with the first spur gear 41 G and the second spur gear 42 G.
- the third spur gears 61 G are interposed between the first spur gear 41 G and the second spur gears 42 G, to cause the rotation direction of the second spur gear 42 G to be opposite to the rotation direction of the first spur gear 41 G.
- FIG. 11 illustrates the line segment C connecting the center A of the first shaft 31 of the hinge 3 with the center B of the second shaft 32 , to be disposed vertically, to enable easy recognition of rotation angles ⁇ 1 and ⁇ 2 of the first casing 21 and the second casing 22 .
- the rotation angle ⁇ 1 of the first casing 21 is larger than the rotation angle ⁇ 2 of the second casing 22 , when the second casing 22 is rotated with respect to the first casing 21 from the first state P 1 to the second state P 2 , or from the second state P 2 to the first state P 1 , like the first embodiment.
- the rotation speed of the first casing 21 is faster than the rotation speed of the second casing 22 (second shaft 32 ), with respect to the line segment C connecting the center A of the first shaft 31 of the hinge 3 with the center B of the second shaft 32 .
- the first casing 21 and the second casing 22 are connected with the hinges 3 to be continuously rotatable from the first state P 1 to the second state P 2 , like the electronic apparatus 1 of the first embodiment.
- spur gears first spur gear 41 G, second spur gear 42 G, and third spur gears 61 G
- the electronic apparatus 1 has a simple structure, and enables suppression of the manufacturing cost.
- FIG. 12 is a perspective view illustrating the hinge 3 disposed on the right side of the electronic apparatus 1 in the first state Pl.
- FIG. 13 illustrates a side view of the hinge 3 of FIG. 12 as viewed from the right in a direction along the first shaft 31 and the second shaft 32 . As illustrated in FIG.
- the hinge 3 includes a gear train G consisted of a first spur gear 41 G serving as the first rotation engaging portion 41 , a second spur gear 42 G serving as the second rotation engaging portion 42 , a speed change gear 62 G meshed with the first spur gear 41 G and having a speed change ratio to set the rotation angle (that is, rotation angle ⁇ 2 of the second casing 22 ) of the second spur gear 42 G to be smaller than the rotation angle (that is, rotation angle ⁇ 1 of the first casing 21 ) of the first spur gear 41 G, and a transmission gear 63 G disposed between the second spur gear 42 G and the speed change gear 62 G and causing the rotation direction of the second spur gear 42 G to be linked oppositely with the rotation direction of the first spur gear 41 G.
- a gear train G consisted of a first spur gear 41 G serving as the first rotation engaging portion 41 , a second spur gear 42 G serving as the second rotation engaging portion 42 , a speed change gear 62 G meshed with the first spur gear 41 G and having a speed change ratio
- the first spur gear 41 G and the second spur gear 42 G have the same external diameter and the same number of teeth, and the speed change gear 62 G makes the rotation angles of the first spur gear 41 G and the second spur gear 42 G different from each other.
- the speed change gear 62 G includes a large-diameter portion 621 meshed with the first spur gear 41 G, and a small-diameter portion 622 meshed with the second spur gear 42 G.
- the large-diameter portion 621 of the speed change gear 62 G is meshed with the first spur gear 41 G
- the small-diameter portion 622 is meshed with the transmission gear 63 G.
- the transmission gear 63 G may be disposed between the first spur gear 41 G and the speed change gear 62 G, instead of being disposed between the second spur gear 42 G and the speed change gear 62 G.
- the first spur gear 41 G may have teeth only in a range meshed with the large-diameter portion 621 of the speed change gear 62 G.
- the second spur gear 42 G may have teeth only in a range meshed with the transmission gear 63 G.
- the rotation angle ⁇ 1 of the first casing 21 is larger than the rotation angle ⁇ 2 of the second casing 22 , when the electronic apparatus 1 is transformed from the first state P 1 to the second state P 2 , or conversely, in the same manner as the electronic apparatuses 1 according to the first and the second embodiments.
- the transmission unit 6 includes the speed change gear 62 G
- the external diameter of the second spur gear 42 G serving as the second rotation engaging portion 42 can be set equal to or smaller than the external diameter of the first spur gear 41 G serving as the first rotation engaging portion 41 .
- the second size T 2 of the second casing 22 is smaller than the first size T 1 of the first casing 21 , the external diameter of the second spur gear 42 G can be reduced. This structure enables a further compact structure of the hinge portion, and excellent design of the electronic apparatus 1 .
- FIG. 15 is a perspective view of the hinge 3 disposed on the right side of the electronic apparatus 1 , and in a middle state between the first state P 1 and the second state P 2 , that is, in a state where the first casing 21 and the second casing 22 extend along the same plane.
- the hinge 3 in the present embodiment includes a first cam roller 41 R serving as the first rotation engaging portion 41 , a second cam roller 42 R serving as the second rotation engaging portion 42 , and an engaging element 64 R serving as the transmission unit 6 to synchronize rotation angles of the rollers.
- the first cam roller 41 R includes a first spiral groove 412 in a cylindrical surface 411 parallel with the first shaft 31 .
- the second cam roller 42 R includes a second spiral groove 422 running in a direction opposite to the first spiral groove 412 in a cylindrical surface 421 parallel with the second shaft 32 and having an external diameter larger than an external diameter of the first cam roller 41 R.
- the engaging element 64 R is fitted into the first spiral groove 412 and the second spiral groove 422 , and movable in a direction along the first shaft 31 and the second shaft 32 .
- the engaging element 64 R is moved along a guide rod 641 disposed between and in parallel with the first shaft 31 and the second shaft 32 , by rotation of the first cam roller 41 R and the second cam roller 42 R in mutually opposite directions.
- FIG. 16 is a schematic diagram in which the cylindrical surface 411 of the first cam roller 41 R and the cylindrical surface 421 of the second cam roller 42 R are developed.
- FIG. 16 illustrates the cylindrical surface 411 of the first cam roller 41 R on the right, and the cylindrical surface 421 of the second cam roller 42 R on the left.
- the positions of zero degree indicate the state of FIG. 15 and the center state in FIG. 17 .
- FIG. 17 illustrates the right hinge 3 of the electronic apparatus 1 as viewed from the rear center side toward the right front, and illustrates a process in which the hinge 3 is transformed from the first state P 1 illustrated in the right end in the drawing to the second state P 2 illustrated in the left end in a stepped manner.
- a slope (pitch) Q 1 of the spiral of the first spiral groove 412 and a slope (pitch) Q 2 of the spiral of the second spiral groove 422 are set to the same angle.
- a circumferential length S 1 with which the first spiral groove 412 of the first cam roller 41 R is in slide contact with the engaging element 64 R is set to the same length as a circumferential length S 2 with which the second spiral groove 422 of the second cam roller 42 R is in slide contact with the engaging element 64 R.
- the first cam roller 41 R is rotated by 90° or more based on 0°, while the second cam roller 42 R is rotated by less than 90° based on 0°, as illustrated in FIG. 16 .
- the engaging element 64 R located on the friction portion 33 side in the first state P 1 is moved to the plates 311 and 321 side in the second state P 2 .
- the X direction in FIG. 16 indicates a direction going from the friction portion 33 toward the plates 311 and 321 .
- the engaging element 64 R is engaged in the same position in the X direction with the first cam roller 41 R and the second cam roller 42 R, and thereby links the rotation angles of the first cam roller 41 R and the second cam roller 42 R.
- FIG. 18 is a perspective view of the hinge 3 disposed on the right side of the electronic apparatus 1 as viewed slantly from the left front to the right rear, and in a middle state between the first state P 1 and the second state P 2 , that is, in a state where the first casing 21 and the second casing 22 extend along the same plane.
- the hinge 3 in the fifth embodiment includes a first cam roller 41 R serving as the first rotation engaging portion 41 , and a second cam roller 42 R serving as the second rotation engaging portion 42 , in the same manner as the hinge 3 of the fourth embodiment.
- the hinge 3 also includes a cam plate 65 P serving as the transmission unit 6 to synchronize rotation angles of the cam rollers and disposed between the first cam roller 41 R and the second cam roller 42 R.
- FIG. 19 is a schematic diagram in which the cylindrical surface 411 of the first cam roller 41 R and the cylindrical surface 421 of the second cam roller 42 R are developed.
- FIG. 20 illustrates the right hinge 3 of the electronic apparatus 1 as viewed from the right front, and illustrates a process in which the hinge 3 is transformed from the first state P 1 illustrated in the left end in the drawing to the second state P 2 illustrated in the right end in a stepped manner.
- the cylindrical surface 411 of the first cam roller 41 R has the same external diameter as that of the cylindrical surface 421 of the second cam roller 42 R, and a slope (pitch) Q 1 of the spiral of the first spiral groove 412 and a slope (pitch) Q 2 of the spiral of the second spiral groove 422 are set opposite and different from each other.
- the positions of zero degree indicate the state of FIG. 18 and the center state of FIG. 20 .
- the slope Q 1 of the first spiral groove 412 is shallow (smaller in pitch) than the slope Q 2 of the second spiral groove 422 .
- the slope (pitch) Q 2 of the spiral of the second spiral groove 422 is larger than the slope Q 1 of the spiral of the first spiral groove 412 .
- the cam plate 65 P includes a projection 651 fitted into the first spiral groove 412 , and a projection 652 fitted into the second spiral groove 422 . The cam plate 65 P is moved along guide rods 653 disposed in parallel with the first shaft 31 and the second shaft 32 .
- the slope Q 1 of the first spiral groove 412 is different from the slope Q 2 of the second spiral groove 422 .
- the projections 651 and 652 engaged with the grooves are different in shape from each other.
- the slope Q 1 of the first spiral groove 412 is shallow than the slope Q 2 of the second spiral groove 422 .
- the rotation angle of the first cam roller 41 R is larger than rotation angle of the second cam roller 42 R.
- the rotation speed of the first cam roller 41 R is faster than the rotation speed of the second cam roller 42 R.
- the first cam roller 41 R is rotated by 90° or more based on zero degree, while the second cam roller 42 R is rotated by less than 90° based on zero degree, as illustrated in FIG. 19 .
- the first cam roller 41 R and the second cam roller 42 R are set with respect to the cam plate 65 P, such that the first casing 21 makes an acute angle with the line segment C connecting the center A of the first shaft 31 with the center B of the second shaft 32 in the radial direction, and the second casing 22 makes an obtuse angle with the line segment C, in either of the first state P 1 and the second state P 2 of the electronic apparatus 1 .
- the X direction in FIG. 19 indicates a direction going from the friction portion 33 toward the plates 311 and 321 .
- the cam plate 65 P located at the friction portion 33 side in the first state P 1 is moved to the plates 311 and 321 side in the second state P 2 .
- the cam plate 65 P includes the projection 651 matching the first spiral groove 412 and the projection 652 matching the second spiral groove 422 , and their slopes Q 1 and Q 2 are constant respectively. This structure enables linkage of the state in which the rotation angle of the first cam roller 41 R is larger than the rotation angle of the second cam roller 42 R.
- the electronic apparatus 1 structured as described above according to the fifth embodiment enables linkage of the rotation angles of the first shaft 31 and the second shaft 32 with respect to the housing 5 , because the cam plate 65 P is fitted into the first spiral groove 412 of the first cam roller 41 R and the second spiral groove 422 of the second cam roller 42 R, when the second casing 22 is rotated by 360° with respect to the first casing 21 from the first state P 1 to the second state P 2 .
- the cam plate 65 P is guided with two guide rods 653 , is prevented inclination or twist, and enables stable operations.
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Abstract
According to one embodiment, an electronic apparatus includes a first casing, a second casing, and a hinge which couples them rotatably from a first state to a second state. The hinge includes a first shaft, a first rotation engaging portion, a second shaft, a second rotation engaging portion, a housing, and a transmission unit. The transmission unit links the first engaging portion and the second engaging portion and rotates them with respect to a rotation angle of the housing from the first state to the second state.
Description
- This application claims the benefit of U.S. Provisional Application No. 62/294,234, filed Feb. 11, 2016, the entire contents of which are incorporated herein by reference.
- Embodiments described herein relate generally to an electronic apparatus including two casings coupled together with two-parallel-axis hinges and transforming from a clamshell mode to a tablet mode.
- An electronic apparatus in which two housings are coupled with two-parallel-axis hinges is known. A gear mechanism is provided between shafts disposed to have two axes such that two-axis hinges equally rotate. The gear mechanism is simple when the two casings have the same thickness when the two casing are superimposed.
- However, the required gear mechanism is complicated when the two casings have different thicknesses. A more complicated gear mechanism is required to rotate one casing by 360° to the rear side of the other casing from a state where the two casings are superimposed on each other.
- A general architecture that implements the various features of the embodiments will now be described with reference to the drawings. The drawings and the associated descriptions are provided to illustrate the embodiments and not to limit the scope of the invention.
-
FIG. 1 is an exemplary perspective view of an electronic apparatus according to a first embodiment; -
FIG. 2 is an exemplary enlarged perspective view of a hinge of the electronic apparatus ofFIG. 1 ; -
FIG. 3 is an exemplary exploded perspective view of the hinge ofFIG. 2 ; -
FIG. 4 is an exemplary side view of the hinge ofFIG. 2 as viewed in a direction along a rotation axis; -
FIG. 5 is an exemplary side view illustrating a state in which the hinge ofFIG. 4 transforms from a first state to a second state in a stepped manner; -
FIG. 6 is an exemplary perspective view illustrating movement of gears of the hinge ofFIG. 4 ; -
FIG. 7 is an exemplary perspective view in which the electronic apparatus ofFIG. 1 is transformed from the first state to the second state in a stepped manner; -
FIG. 8 is an exemplary perspective view of the hinge corresponding to the electronic apparatus ofFIG. 7 ; -
FIG. 9 is an exemplary enlarged perspective view of a hinge of an electronic apparatus according to a second embodiment; -
FIG. 10 is an exemplary side view illustrating a gear train inside the hinge ofFIG. 9 ; -
FIG. 11 is an exemplary side view illustrating movement of the hinge when the electronic apparatus ofFIG. 9 is transformed from a first state to a second state; -
FIG. 12 is an exemplary perspective view illustrating a hinge of an electronic apparatus according to a third embodiment; -
FIG. 13 is an exemplary side view illustrating a gear train inside the hinge ofFIG. 12 ; -
FIG. 14 is an exemplary exploded perspective view of the hinge ofFIG. 12 ; -
FIG. 15 is an exemplary perspective view of a hinge of an electronic apparatus according to a fourth embodiment; -
FIG. 16 is an exemplary development of cylindrical surfaces of rollers of the hinge ofFIG. 15 ; -
FIG. 17 is an exemplary perspective view illustrating movement of the hinge when the hinge ofFIG. 15 is transformed from a first state to a second state of the electronic apparatus; -
FIG. 18 is an exemplary perspective view of a hinge of an electronic apparatus according to a fifth embodiment; -
FIG. 19 is an exemplary development of cylindrical surfaces of rollers of the hinge ofFIG. 18 ; and -
FIG. 20 is an exemplary perspective view illustrating movement of the hinge when the hinge ofFIG. 18 is transformed from a first state to a second state of the electronic apparatus. - Various embodiments will be described hereinafter with reference to the accompanying drawings.
- In general, according to one embodiment, an electronic apparatus comprises a first casing, a second casing, and a hinge. The first casing includes a first surface and a second surface opposite to the first surface. The second casing includes a third surface and a fourth surface opposite to the third surface. The hinge couples the first casing with the second casing continuously rotatably from a first state to a second state. The first state is a state in which the first casing and the second casing are superimposed with the third surface caused to face the first surface. The second state is a state in which the first casing and the second surface are superimposed with the fourth surface caused to face the second surface. The hinge includes a first shaft, a first rotation engaging portion, a second shaft, a second rotation engaging portion, a housing, and a transmission unit. The first shaft is fixed to the first casing. The first rotation engaging portion is fixed to the first shaft. The second shaft is fixed to the second casing. The second rotation engaging portion is fixed to the second shaft. The housing holds the first shaft and the second shaft in parallel. The transmission unit links rotation angles of the first rotation engaging portion and the second rotation engaging portion with respect to the housing from the first state to the second state. The transmission unit links the first rotation engaging portion and the second rotation engaging portion such that a line segment connecting a center of the first shaft with a center of the second shaft in a radial direction makes an acute angle with the first surface and the second surface of the first casing and makes an obtuse angle with the third surface and the fourth surface of the second casing in either of the first state and the second state.
- The electronic apparatus has a structure in which the first casing and the second casing are coupled with a hinge such that the first casing and the second casing continuously rotate, and is transformed from the first state to the second state. Specifically, this means that the second casing is rotated by 360° with respect to the first casing, and the first casing is rotated by 360° with respect to the second casing. The feature that the first casing makes an acute angle with the line segment connecting the center of the first shaft with the center of the second shaft in either of the first state and the second state means that the rotation angle of the first casing transforming from the first state to the second state with respect to the line segment connecting the center of the first shaft with the center of the second shaft is 180° or more. In addition, the feature that the second casing makes an obtuse angle with the line segment connecting the center of the first shaft with the center of the second shaft in either of the first state and the second state means that the rotation angle of the second casing transforming from the first state to the second state with respect to the line segment connecting the center of the first shaft with the center of the second shaft is 180° or less. Specifically, the rotation angle of the first casing from the first state to the second state is larger than a rotation angle of the second casing. In other words, in the first rotation engaging portion and the second rotation engaging portion linked by the transmission unit, the ratio of the rotation angle of the second rotation engaging portion is smaller than the rotation angle of the first rotation engaging portion. Specifically, when the first casing and the second casing are transformed from the first state to the second state, the rotation speed of the first casing with respect to the housing is faster than the rotation speed of the second casing.
- An
electronic apparatus 1 according to a first embodiment will be explained with reference toFIG. 1 toFIG. 8 . Theelectronic apparatus 1 illustrated inFIG. 1 has a structure in which a main body serving as afirst casing 21 is connected with a display unit serving as asecond casing 22 withhinges 3. Theelectronic apparatus 1 can be used in two forms, that is, a clamshell mode in which theelectronic apparatus 1 is used in a state where thefirst casing 21 is placed on a desktop or the like and thesecond casing 22 is raised with respect to thefirst casing 21, and a tablet mode in which theelectronic apparatus 1 is used in a state where thefirst casing 21 and thesecond casing 22 are superimposed with the display surface of thesecond casing 22 facing front to enable a user to perform an input operation by directly touching the display surface of thesecond casing 22 with a pen or a finger. Theelectronic apparatus 1 in the clamshell mode is illustrated inFIG. 1 . Theelectronic apparatus 1 in the tablet mode is illustrated on the rightmost side inFIG. 7 . - In
FIG. 1 , parts of thefirst casing 21 and thesecond casing 22 are illustrated with imaginary lines (two-dot chain lines) such that thehinges 3 coupling thefirst casing 21 with thesecond casing 22 can be viewed. Theelectronic apparatus 1 includes thefirst casing 21, thesecond casing 22, and thehinges 3. Thefirst casing 21 includes afirst surface 21A on which a keyboard serving as an input unit in the clamshell mode is provided, and asecond surface 21B opposite to thefirst surface 21A and serving as a bottom surface when placed on a desktop in the clamshell mode. Thesecond casing 22 includes athird surface 22A serving as a display surface in the clamshell mode and serving as a display surface and an input surface in the tablet mode, and afourth surface 22B located on a back surface opposite to thethird surface 22A and serving as a cover. - For convenience' sake of explanation in the present specification, the parts “front”, “rear”, “right”, and “left” are defined based on the user who views the
third surface 22A of thesecond casing 22 in the clamshell mode illustrated inFIG. 1 from the front, and may be referred to as “front side”, “rear side”, “right side”, and “left side”, respectively, to easily specify the region of theelectronic apparatus 1. -
FIG. 2 is an enlarged perspective view of thehinge 3 of theelectronic apparatus 1 in the clamshell mode.FIG. 3 is an exploded perspective view of thehinge 3 ofFIG. 2 , andFIG. 4 is a side view of thehinge 3 ofFIG. 2 from the right. As illustrated inFIG. 1 , thehinges 3 are arranged in the right rear and the left rear of thefirst casing 21. Theright hinge 3 is illustrated inFIG. 2 andFIG. 3 , and theleft hinge 3 has a left-and-right mirror-image structure with respect to theright hinge 3. - The
hinge 3 includes afirst shaft 31, a firstrotation engaging portion 41, asecond shaft 32, a secondrotation engaging portion 42, ahousing 5, and atransmission unit 6, as illustrated inFIG. 2 andFIG. 3 . Thefirst shaft 1 is disposed along the rear edge of thefirst casing 21, and fixed to thefirst casing 21 through aplate 311 extending along the inside of thefirst casing 21 in a radial direction. Thefirst shaft 31 is rotated together with rotation of thefirst casing 21. The firstrotation engaging portion 41 is coaxially attached to thefirst shaft 31, and fastened to thefirst shaft 31 by keying, brazing, or press fit. Thesecond shaft 32 is disposed along the rear edge of thesecond casing 22, and fixed to thesecond casing 22 through aplate 321 extending along the inside of thesecond casing 22 in a radial direction. The secondrotation engaging portion 42 is coaxially attached to thesecond shaft 32, and fastened to thesecond shaft 32 by keying, brazing, or press fit. - The
transmission unit 6 to transmit rotational force is disposed between the firstrotation engaging portion 41 and the secondrotation engaging portion 42, to link the rotation angles of the firstrotation engaging portion 41 and the secondrotation engaging portion 42. In the present embodiment, the firstrotation engaging portion 41, the secondrotation engaging portion 42, and thetransmission unit 6 serve as helical gears including helical teeth. The pitch of a firsthelical gear 41H serving as the firstrotation engaging portion 41 and the pitch of a secondhelical gear 42H serving as the secondrotation engaging portion 42 have inclination in the same direction as that of a right-hand screw. A thirdhelical gear 61H serving as thetransmission unit 6 has helical teeth of a right-hand screw like the firsthelical gear 41H and the secondhelical gear 42H. The thirdhelical gear 61H is disposed between the firsthelical gear 41H and the secondhelical gear 42H in a direction orthogonal to the rotation center line, and engaged with the firsthelical gear 41H and the secondhelical gear 42H. In this manner, the thirdhelical gear 61H links the rotation direction of the secondhelical gear 42H oppositely with the rotation direction of the firsthelical gear 41H. - The
housing 5 holds thefirst shaft 31 and thesecond shaft 32 in parallel. In the present embodiment, thehousing 5 includescoupling plates rotation engaging portion 41 and the second rotating engagingportion 42 in a direction along thefirst shaft 31 and thesecond shaft 32, andsupport pieces helical gear 61H between the firsthelical gear 41H and the secondhelical gear 42H. As illustrated inFIG. 3 , thesupport pieces coupling plate 52. Onesupport piece 53 may be formed continuously with thecoupling plate 51, and theother support piece 54 may be formed continuously with thecoupling plate 52. - In
FIG. 2 ,FIG. 4 ,FIG. 5 ,FIG. 6 , andFIG. 8 , thecoupling plate 51 is omitted, to enable easy recognition of the relation between the firsthelical gear 41H, the secondhelical gear 42H, and the thirdhelical gear 61H. In addition, a marker M that is not actually provided is illustrated to enable easy recognition of the rotation angle of the thirdhelical gear 61H, with respect to rotation of the first helical gear and the secondhelical gear 42H caused by rotation of thefirst shaft 31 and thesecond shaft 32. - Each of the
first shaft 31 and thesecond shaft 32 extending through thecoupling plate 52 and extending in a direction opposite to the firsthelical gear 41H and the secondhelical gear 42H includes afriction portion 33 consisted of a disc spring and a washer generating rotation resistance to stop at a desired rotation angle with respect to thecoupling plate 52, as illustrated inFIG. 2 andFIG. 3 . The rotation resistance generated by thefriction portions 33 is caused by a fastening force ofnuts 34 screwed at respective end portions of thefirst shaft 31 and thesecond shaft 32. As illustrated inFIG. 2 , ahinge case 23 covers the firsthelical gear 41H, the secondhelical gear 42H, the housing 5 (coupling plates support pieces 53 and 54), thefriction portions 33, and thenuts 34 of thehinge 3. - In the present embodiment, as illustrated in
FIG. 2 andFIG. 4 , thefirst casing 21 has a first size T1 from thefirst surface 21A to thesecond surface 21B, and thesecond casing 22 has a second size T2 from thethird surface 22A to thefourth surface 22B. The second size T2 is smaller than the first size T1. In addition, as illustrated inFIG. 4 toFIG. 6 , the external diameter of the secondhelical gear 42H is larger than the external diameter of the firsthelical gear 41H, that is, the secondhelical gear 42H has the larger number of teeth of the helical gear than that of the firsthelical gear 41H. An engaging radius R1 of the firsthelical gear 41H is smaller than an engaging radius R2 of the secondhelical gear 42H. - As illustrated in
FIG. 7 andFIG. 8 , thehinges 3 couple thesecond casing 22 with thefirst casing 21 such that thesecond casing 22 is continuously rotatable with respect to thefirst casing 21, from a first state P1 in which thefirst casing 21 is superimposed on thesecond casing 22 with thethird surface 22A facing thefirst surface 21A, to a second state P2 in which thefirst casing 21 is superimposed on thesecond casing 22 with thefourth surface 22B facing thesecond surface 21B. -
FIG. 4 is a side view of thehinge 3 in the case where theelectronic apparatus 1 is used in the clamshell mode, andFIG. 5 illustrates a process in which thesecond casing 22 is rotated from the first state P1 to the second state P2 based on thefirst casing 21 in a stepped manner. InFIG. 5 , thehinge 3 in the first state P1 is illustrated uppermost, and thehinge 3 in the second state P2 is illustrated lowermost.FIG. 6 is a perspective view of the right hinge as viewed from the right front in a state where the first casing and the second casing are disposed in a straight line, during a process in which the electronic apparatus is transformed from the first state P1 to the second state P2.FIG. 7 is a perspective view in which theelectronic apparatus 1 is transformed from the first state P1 to the second state P2 in a stepped manner. Theelectronic apparatus 1 in the first state P1 is illustrated in the leftmost part inFIG. 7 , and theelectronic apparatus 1 in the second state P2 is illustrated in the rightmost part inFIG. 7 .FIG. 8 is a perspective view of a process in which theelectronic apparatus 1 is transformed from the first state P1 to the second state P2 likeFIG. 7 , based on thehinges 3.FIG. 7 andFIG. 8 illustrate thefirst casing 21 and thesecond casing 22 that are rotated based on thehinges 3, to enable easy recognition of the rotation angles of thefirst casing 21 and thesecond casing 22 with respect to thehinges 3. - As illustrated in
FIG. 5 , in either of the cases where theelectronic apparatus 1 is in the first state P1 or the second state P2, the thirdhelical gear 61H serving as thetransmission unit 6 is engaged with the firsthelical gear 41H and the secondhelical gear 42H, such that a line segment C connecting the center A of thefirst shaft 31 with the center B of thesecond shaft 32 makes an acute angle with thefirst casing 21 and makes an obtuse angle with thesecond casing 22. An engaging radius R3 of the thirdhelical gear 61H may agree with, or disagree with, one of the engaging radius R1 of the firsthelical gear 41H and the engaging radius R2 of the secondhelical gear 42H. In consideration of smooth movement of thehinges 3 without bulkiness, the engaging radius R3 of the thirdhelical gear 61H is set between the engaging radius R1 of the firsthelical gear 41H and the engaging radius R2 of the secondhelical gear 42H. In the present embodiment, the engaging radius R3 of the thirdhelical gear 61H is set equal to the engaging radius R2 of the secondhelical gear 42H. - Like the hinge illustrated in the center of
FIG. 5 , when thefirst surface 21A and thesecond surface 21B of thefirst casing 21 are parallel with the line segment C connecting the center A of thefirst shaft 31 with the center B of thesecond shaft 32, thethird surface 22A and thefourth surface 22B of thesecond casing 22 also become parallel with the line segment C. Specifically, theelectronic apparatus 1 is in the state in which thefirst casing 21, thehinge case 23, and thesecond casing 22 extend in a straight line. When thesecond casing 22 is rotated with respect to thefirst casing 21 from the first state P1 to the second state P2 as illustrated inFIG. 5 , that is, when thesecond casing 22 is rotated by 360° with respect to thefirst casing 21, an angle θ1 at which thefirst casing 21 is rotated with respect to the line segment C (or hinge case 23) connecting the center A of thefirst shaft 31 with the center B of thesecond shaft 32 is larger than an angle θ2 at which thesecond casing 22 is rotated with respect to the line segment C (or hinge case 23), as illustrated inFIG. 7 andFIG. 8 . Specifically, the rotation speed of thefirst shaft 31 with respect to the line segment C is faster than the rotation speed of thesecond shaft 32. - In addition, when the
electronic apparatus 1 is transformed from the first state P1 to the second state P2 as illustrated inFIG. 7 andFIG. 8 , as thehinge 3 illustrated inFIG. 6 is viewed from the right, the first shaft 31 (first casing 21) is rotated counterclockwise as indicated by anarrow 31V, and the second shaft 32 (second casing 22) is rotated clockwise as indicated by anarrow 32V. The thirdhelical gear 61H serving as thetransmission unit 6 is rotated clockwise as indicated by anarrow 61V, when thehinge 3 illustrated inFIG. 6 is viewed from the front. - As illustrated in
FIG. 5 , the second size T2 being the thickness of thesecond casing 22 is smaller than the first size T1 being the thickness of thefirst casing 21, and the line segment C makes an acute angle with thefirst casing 21, and the line segment C makes an obtuse angle with thesecond casing 22, with respect to the line segment C connecting the center A of thefirst shaft 31 with the center B of thesecond shaft 32 in either of the first state P1 and the second state P2. Specifically, in the first state P1, the rear end of thesecond casing 22 is positioned on a slightly more front side than the rear end of thefirst casing 21. - The
electronic apparatus 1 structured as described above satisfies the following conditions in operations of thehinges 3. When thesecond casing 22 is rotated from the first state P1 to the second state P2 with respect to thefirst casing 21, a circumferential length S1 along the engaging radius R1 when the firsthelical gear 41H is rotated by an angle θ1 satisfies “S1=πR1θ1”, when R1 is the engaging radius of the firsthelical gear 41H, R2 is the engaging radius of the secondhelical gear 42H, θ1 is an rotation angle of thefirst casing 21 around thefirst shaft 31, that is, a rotation angle of the firsthelical gear 41H with respect to the center A of thefirst shaft 31, and θ2 is an rotation angle of thesecond casing 22 around thesecond shaft 32, that is, a rotation angle of the secondhelical gear 42H with respect to the center B of thesecond shaft 32. In addition, a circumferential length S2 along the engaging radius R2 when the secondhelical gear 42H is rotated by an angle θ2 satisfies “S2=πR2θ2”. - Because the first
helical gear 41H is linked with the secondhelical gear 42H through the thirdhelical gear 61H, the circumferential length S1 with which the firsthelical gear 41H in rotation is engaged with the thirdhelical gear 61H is equal to the circumferential length S2 with which the secondhelical gear 42H in rotation is engaged with the thirdhelical gear 61H. Accordingly, “S1=S2” is satisfied. As a result, the relation of Expression (1) is obtained. -
R1/R2=θ2/θ1 (1) - In addition, because time t1 with which the first
helical gear 41H is rotated by angle θ1 is the same as time t2 with which the secondhelical gear 42H is rotated by angle θ2, both of them is referred to as rotation time t. When ω1 is an angular velocity at the time when the firsthelical gear 41H is rotated, and ω2 is an angular velocity at the time when the secondhelical gear 42H is rotated, “θ1=ω1t” and “θ2=ω2t” are satisfied. When these values are substituted for the values in Expression (1), the relation of Expression (2) is obtained. -
R1/R2=ω2/ω1 (2) - In addition, N1 is the number of teeth of the first
helical gear 41H and N2 is the number of teeth of the secondhelical gear 42H, the relation of Expression (3) is obtained. Each of N1 and N2 is an integer. -
R1/R2=N1/N2 (3) - In the
electronic apparatus 1 structured as described above, thesecond casing 22 is enabled to rotate by 360° with respect to thefirst casing 21, from the first state P1 illustrated in the uppermost part inFIG. 5 to the second state P2 illustrated in the lowermost part inFIG. 5 , through the state in which thefirst casing 21 is aligned flat with thesecond casing 22 as illustrated in the middle part inFIG. 5 . In this state, as illustrated inFIG. 7 , the front edge of thefirst casing 21 matches with the front edge of thesecond casing 22 in both the first state P1 and the second state P2. - As described above, in the
electronic apparatus 1, because the firstrotation engaging portion 41 of thefirst shaft 31 is linked with the secondrotation engaging portion 42 of thesecond shaft 32 with thetransmission unit 6, thefirst casing 21 and thesecond casing 22 are smoothly rotated in an equal ratio when theelectronic apparatus 1 is transformed from the first state P1 through the clamshell mode to the second state P2 being the tablet mode, or conversely from the second state P2 to the first state P1. In addition, because the firstrotation engaging portion 41, the secondrotation engaging portion 42, and thetransmission unit 6 are the firsthelical gear 41H, the secondhelical gear 42H, and the thirdhelical gear 61H, respectively, theelectronic apparatus 1 requires a small number of components, and prevents bulkiness of thehinges 3. - In addition, with the
electronic apparatus 1 of the present embodiment, as illustrated inFIG. 5 , the second size T2 of thesecond casing 22 is smaller than the first size T1 of thefirst casing 21, and thefirst casing 21 is disposed at an acute angle with respect to the line segment C connecting the center A of thefirst shaft 31 with the center B of thesecond shaft 32 in either of the first state P1 and the second state P2. Specifically, the rear edge of thesecond casing 22 is disposed on a more front side than the rear edge of thefirst casing 21. Accordingly, when theelectronic apparatus 1 is used in the clamshell mode as inFIG. 1 , the rear edge of the first casing is not blocked with thesecond casing 22 as illustrated inFIG. 4 . This structure enables use of the rear edge of the first casing to be provided with an air intake and an air outlet to discharge heat generated inside thefirst casing 21, or provided with a terminal to be connected with a peripheral device. - The following is explanation of electronic apparatuses according to second to fifth embodiments. In each of the embodiments, constituent elements having the same functions as those of the constituent elements of the
electronic apparatus 1 according to the first embodiment will be denoted by the same reference numerals in the drawings and the following explanation. The description and related drawings of the first embodiment are referred to for the detailed explanation thereof. - An
electronic apparatus 1 of the second embodiment will be explained with reference toFIG. 9 toFIG. 11 .FIG. 9 is a perspective view illustrating theright hinge 3 of theelectronic apparatus 1 in the first state Pl, andFIG. 10 illustrates a side view of thehinge 3 as viewed from the right in a direction along thefirst shaft 31 and thesecond shaft 32.FIG. 11 illustrates a process of transforming theelectronic apparatus 1 ofFIG. 10 in shape in a stepped manner, from the first state P1 to the second state P2, or the second state P2 to the first state P1. InFIG. 11 , the first state P1 is illustrated in the leftmost part, and the second state P2 is illustrated in the rightmost part.FIG. 10 andFIG. 11 illustrate a gear train G configured of afirst spur gear 41G, asecond spur gear 42G, and third spur gears 61G, andplates first shaft 31 and thesecond shaft 32, respectively, to enable easy understanding of each of the spur gears inside thehinge 3. - Like the first embodiment, the
electronic apparatus 1 according to the second embodiment has a structure in which the second size T2 of thesecond casing 22 is smaller than the first size T1 of thefirst casing 21 as illustrated inFIG. 1 . In addition, eachhinge 3 of theelectronic apparatus 1 includes thefirst spur gear 41G as the firstrotation engaging portion 41 fixed to thefirst shaft 31, and thesecond spur gear 42G having an external diameter larger than an external diameter of thefirst spur gear 41G and serving as the secondrotation engaging portion 42 fixed to thesecond shaft 32. - The
hinge 3 includes at least twothird spur gears 61G serving as thetransmission unit 6 linking thefirst spur gear 41G with thesecond spur gear 42G. The third spur gears 61G are arranged in parallel with thefirst spur gear 41G and thesecond spur gear 42G. The third spur gears 61G are interposed between thefirst spur gear 41G and the second spur gears 42G, to cause the rotation direction of thesecond spur gear 42G to be opposite to the rotation direction of thefirst spur gear 41G. -
FIG. 11 illustrates the line segment C connecting the center A of thefirst shaft 31 of thehinge 3 with the center B of thesecond shaft 32, to be disposed vertically, to enable easy recognition of rotation angles θ1 and θ2 of thefirst casing 21 and thesecond casing 22. With theelectronic apparatus 1 of the second embodiment, the rotation angle θ1 of thefirst casing 21 is larger than the rotation angle θ2 of thesecond casing 22, when thesecond casing 22 is rotated with respect to thefirst casing 21 from the first state P1 to the second state P2, or from the second state P2 to the first state P1, like the first embodiment. Specifically, the rotation speed of the first casing 21 (first shaft 31) is faster than the rotation speed of the second casing 22 (second shaft 32), with respect to the line segment C connecting the center A of thefirst shaft 31 of thehinge 3 with the center B of thesecond shaft 32. - With the
electronic apparatus 1 structured as described above according to the second embodiment, thefirst casing 21 and thesecond casing 22 are connected with thehinges 3 to be continuously rotatable from the first state P1 to the second state P2, like theelectronic apparatus 1 of the first embodiment. Because spur gears (first spur gear 41G,second spur gear 42G, and third spur gears 61G) are adopted as the firstrotation engaging portion 41, the secondrotation engaging portion 42, and thetransmission unit 6, theelectronic apparatus 1 has a simple structure, and enables suppression of the manufacturing cost. - An
electronic apparatus 1 according to the third embodiment will be explained with reference toFIG. 12 toFIG. 14 .FIG. 12 is a perspective view illustrating thehinge 3 disposed on the right side of theelectronic apparatus 1 in the first state Pl.FIG. 13 illustrates a side view of thehinge 3 ofFIG. 12 as viewed from the right in a direction along thefirst shaft 31 and thesecond shaft 32. As illustrated inFIG. 13 , thehinge 3 includes a gear train G consisted of afirst spur gear 41G serving as the firstrotation engaging portion 41, asecond spur gear 42G serving as the secondrotation engaging portion 42, aspeed change gear 62G meshed with thefirst spur gear 41G and having a speed change ratio to set the rotation angle (that is, rotation angle θ2 of the second casing 22) of thesecond spur gear 42G to be smaller than the rotation angle (that is, rotation angle θ1 of the first casing 21) of thefirst spur gear 41G, and atransmission gear 63G disposed between thesecond spur gear 42G and thespeed change gear 62G and causing the rotation direction of thesecond spur gear 42G to be linked oppositely with the rotation direction of thefirst spur gear 41G. - In the third embodiment, as illustrated in
FIG. 13 , thefirst spur gear 41G and thesecond spur gear 42G have the same external diameter and the same number of teeth, and thespeed change gear 62G makes the rotation angles of thefirst spur gear 41G and thesecond spur gear 42G different from each other. As illustrated inFIG. 14 , thespeed change gear 62G includes a large-diameter portion 621 meshed with thefirst spur gear 41G, and a small-diameter portion 622 meshed with thesecond spur gear 42G. In the present embodiment, the large-diameter portion 621 of thespeed change gear 62G is meshed with thefirst spur gear 41G, and the small-diameter portion 622 is meshed with thetransmission gear 63G. Thetransmission gear 63G may be disposed between thefirst spur gear 41G and thespeed change gear 62G, instead of being disposed between thesecond spur gear 42G and thespeed change gear 62G. Thefirst spur gear 41G may have teeth only in a range meshed with the large-diameter portion 621 of thespeed change gear 62G. Thesecond spur gear 42G may have teeth only in a range meshed with thetransmission gear 63G. - As described above, with the
electronic apparatus 1 with thehinges 3 structured as described above according to the third embodiment, the rotation angle θ1 of thefirst casing 21 is larger than the rotation angle θ2 of thesecond casing 22, when theelectronic apparatus 1 is transformed from the first state P1 to the second state P2, or conversely, in the same manner as theelectronic apparatuses 1 according to the first and the second embodiments. In addition, because thetransmission unit 6 includes thespeed change gear 62G, the external diameter of thesecond spur gear 42G serving as the secondrotation engaging portion 42 can be set equal to or smaller than the external diameter of thefirst spur gear 41G serving as the firstrotation engaging portion 41. Because the second size T2 of thesecond casing 22 is smaller than the first size T1 of thefirst casing 21, the external diameter of thesecond spur gear 42G can be reduced. This structure enables a further compact structure of the hinge portion, and excellent design of theelectronic apparatus 1. - An
electronic apparatus 1 according to the fourth embodiment will be explained with reference toFIG. 15 toFIG. 17 .FIG. 15 is a perspective view of thehinge 3 disposed on the right side of theelectronic apparatus 1, and in a middle state between the first state P1 and the second state P2, that is, in a state where thefirst casing 21 and thesecond casing 22 extend along the same plane. Thehinge 3 in the present embodiment includes afirst cam roller 41R serving as the firstrotation engaging portion 41, asecond cam roller 42R serving as the secondrotation engaging portion 42, and anengaging element 64R serving as thetransmission unit 6 to synchronize rotation angles of the rollers. Thefirst cam roller 41R includes afirst spiral groove 412 in acylindrical surface 411 parallel with thefirst shaft 31. Thesecond cam roller 42R includes asecond spiral groove 422 running in a direction opposite to thefirst spiral groove 412 in acylindrical surface 421 parallel with thesecond shaft 32 and having an external diameter larger than an external diameter of thefirst cam roller 41R. Theengaging element 64R is fitted into thefirst spiral groove 412 and thesecond spiral groove 422, and movable in a direction along thefirst shaft 31 and thesecond shaft 32. When thefirst casing 21 and thesecond casing 22 are transformed from the first state P1 to the second state P2, or conversely from the second state P2 to the first state P1, the engagingelement 64R is moved along aguide rod 641 disposed between and in parallel with thefirst shaft 31 and thesecond shaft 32, by rotation of thefirst cam roller 41R and thesecond cam roller 42R in mutually opposite directions. -
FIG. 16 is a schematic diagram in which thecylindrical surface 411 of thefirst cam roller 41R and thecylindrical surface 421 of thesecond cam roller 42R are developed.FIG. 16 illustrates thecylindrical surface 411 of thefirst cam roller 41R on the right, and thecylindrical surface 421 of thesecond cam roller 42R on the left. InFIG. 16 , the positions of zero degree indicate the state ofFIG. 15 and the center state inFIG. 17 .FIG. 17 illustrates theright hinge 3 of theelectronic apparatus 1 as viewed from the rear center side toward the right front, and illustrates a process in which thehinge 3 is transformed from the first state P1 illustrated in the right end in the drawing to the second state P2 illustrated in the left end in a stepped manner. - As illustrated in
FIG. 16 , a slope (pitch) Q1 of the spiral of thefirst spiral groove 412 and a slope (pitch) Q2 of the spiral of thesecond spiral groove 422 are set to the same angle. In addition, when theelectronic apparatus 1 is transformed from the first state P1 to the second state P2 or conversely from the second state P2 to the first state P1, a circumferential length S1 with which thefirst spiral groove 412 of thefirst cam roller 41R is in slide contact with theengaging element 64R is set to the same length as a circumferential length S2 with which thesecond spiral groove 422 of thesecond cam roller 42R is in slide contact with theengaging element 64R. Accordingly, when the electronic apparatus is transformed from the first state P1 to the second state P2 or conversely from the second state P2 to the first state P1, thefirst cam roller 41R is rotated by 90° or more based on 0°, while thesecond cam roller 42R is rotated by less than 90° based on 0°, as illustrated inFIG. 16 . - As illustrated in
FIG. 17 , with rotation of thefirst cam roller 41R and thesecond cam roller 42R, the engagingelement 64R located on thefriction portion 33 side in the first state P1 is moved to theplates FIG. 16 indicates a direction going from thefriction portion 33 toward theplates engaging element 64R is engaged in the same position in the X direction with thefirst cam roller 41R and thesecond cam roller 42R, and thereby links the rotation angles of thefirst cam roller 41R and thesecond cam roller 42R. - With the
electronic apparatus 1 structured as described above according to the fourth embodiment, when thesecond casing 22 is rotated by 360° with respect to thefirst casing 21 from the first state P1 to the second state P2, because theengaging element 64R is fitted into thefirst spiral groove 412 of thefirst cam roller 41R and thesecond spiral groove 422 of thesecond cam roller 42R, the rotation angles of thefirst shape 31 and thesecond shaft 32 are linked with thehousing 5. As a result, this structure enables shape of theelectronic apparatus 1 to transform smoothly from the first state P1 to the second state P2, and from the second state P2 to the first state P1. Because theengaging element 64R serving as thetransmission unit 6 is disposed between thefirst cam roller 41R and thesecond cam roller 42R, the engagingelement 64R does not bulk outward beyond thefirst cam roller 41R and thesecond cam roller 42R. - An
electronic apparatus 1 according to the fifth embodiment will be explained with reference toFIG. 18 toFIG. 20 .FIG. 18 is a perspective view of thehinge 3 disposed on the right side of theelectronic apparatus 1 as viewed slantly from the left front to the right rear, and in a middle state between the first state P1 and the second state P2, that is, in a state where thefirst casing 21 and thesecond casing 22 extend along the same plane. Thehinge 3 in the fifth embodiment includes afirst cam roller 41R serving as the firstrotation engaging portion 41, and asecond cam roller 42R serving as the secondrotation engaging portion 42, in the same manner as thehinge 3 of the fourth embodiment. Thehinge 3 also includes acam plate 65P serving as thetransmission unit 6 to synchronize rotation angles of the cam rollers and disposed between thefirst cam roller 41R and thesecond cam roller 42R. -
FIG. 19 is a schematic diagram in which thecylindrical surface 411 of thefirst cam roller 41R and thecylindrical surface 421 of thesecond cam roller 42R are developed.FIG. 20 illustrates theright hinge 3 of theelectronic apparatus 1 as viewed from the right front, and illustrates a process in which thehinge 3 is transformed from the first state P1 illustrated in the left end in the drawing to the second state P2 illustrated in the right end in a stepped manner. In the fifth embodiment, thecylindrical surface 411 of thefirst cam roller 41R has the same external diameter as that of thecylindrical surface 421 of thesecond cam roller 42R, and a slope (pitch) Q1 of the spiral of thefirst spiral groove 412 and a slope (pitch) Q2 of the spiral of thesecond spiral groove 422 are set opposite and different from each other. InFIG. 19 , the positions of zero degree indicate the state ofFIG. 18 and the center state ofFIG. 20 . As illustrated inFIG. 19 , the slope Q1 of thefirst spiral groove 412 is shallow (smaller in pitch) than the slope Q2 of thesecond spiral groove 422. In other words, the slope (pitch) Q2 of the spiral of thesecond spiral groove 422 is larger than the slope Q1 of the spiral of thefirst spiral groove 412. Thecam plate 65P includes aprojection 651 fitted into thefirst spiral groove 412, and aprojection 652 fitted into thesecond spiral groove 422. Thecam plate 65P is moved alongguide rods 653 disposed in parallel with thefirst shaft 31 and thesecond shaft 32. - As illustrated in
FIG. 19 , the slope Q1 of thefirst spiral groove 412 is different from the slope Q2 of thesecond spiral groove 422. For this reason, theprojections FIG. 19 , because the slope Q1 of thefirst spiral groove 412 is shallow than the slope Q2 of thesecond spiral groove 422, when thecam plate 65P is moved in the X direction along thefirst shaft 31 and thesecond shaft 32, the rotation angle of thefirst cam roller 41R is larger than rotation angle of thesecond cam roller 42R. Specifically, when theelectronic apparatus 1 is transformed from the first state P1 to the second state P2 or conversely, the rotation speed of thefirst cam roller 41R is faster than the rotation speed of thesecond cam roller 42R. - According to the fifth embodiment, when the
electronic apparatus 1 is transformed from the first state P1 to the second state P2 or conversely, thefirst cam roller 41R is rotated by 90° or more based on zero degree, while thesecond cam roller 42R is rotated by less than 90° based on zero degree, as illustrated inFIG. 19 . As a result, thefirst cam roller 41R and thesecond cam roller 42R are set with respect to thecam plate 65P, such that thefirst casing 21 makes an acute angle with the line segment C connecting the center A of thefirst shaft 31 with the center B of thesecond shaft 32 in the radial direction, and thesecond casing 22 makes an obtuse angle with the line segment C, in either of the first state P1 and the second state P2 of theelectronic apparatus 1. - The X direction in
FIG. 19 indicates a direction going from thefriction portion 33 toward theplates FIG. 20 , with rotation of thefirst cam roller 41R and thesecond cam roller 42R, thecam plate 65P located at thefriction portion 33 side in the first state P1 is moved to theplates cam plate 65P includes theprojection 651 matching thefirst spiral groove 412 and theprojection 652 matching thesecond spiral groove 422, and their slopes Q1 and Q2 are constant respectively. This structure enables linkage of the state in which the rotation angle of thefirst cam roller 41R is larger than the rotation angle of thesecond cam roller 42R. - The
electronic apparatus 1 structured as described above according to the fifth embodiment enables linkage of the rotation angles of thefirst shaft 31 and thesecond shaft 32 with respect to thehousing 5, because thecam plate 65P is fitted into thefirst spiral groove 412 of thefirst cam roller 41R and thesecond spiral groove 422 of thesecond cam roller 42R, when thesecond casing 22 is rotated by 360° with respect to thefirst casing 21 from the first state P1 to the second state P2. In addition, since thecam plate 65P is guided with twoguide rods 653, is prevented inclination or twist, and enables stable operations. - While certain embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions. Indeed, the novel embodiments described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the embodiments described herein may be made without departing from the spirit of the inventions. The accompanying claims and their equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the inventions.
Claims (7)
1. An electronic apparatus comprising:
a first casing comprising a first surface and a second surface opposite to the first surface;
a second casing comprising a third surface and a fourth surface opposite to the third surface; and
a hinge coupling the second casing with the first casing continuously rotatably from a first state in which the first casing and the second casing are superimposed with the third surface caused to face the first surface to a second state in which the first casing and the second surface are superimposed with the fourth surface caused to face the second surface, wherein
the hinge comprises:
a first shaft fixed to the first casing;
a first rotation engaging portion fixed to the first shaft;
a second shaft fixed to the second casing;
a second rotation engaging portion fixed to the second shaft;
a housing holding the first shaft and the second shaft in parallel; and
a transmission unit linking rotation angles of the first rotation engaging portion and the second rotation engaging portion with respect to the housing from the first state to the second state such that a line segment connecting a center of the first shaft with a center of the second shaft in a radial direction makes an acute angle with the first casing and makes an obtuse angle with the second casing in either of the first state and the second state.
2. The electronic apparatus of claim 1 , wherein
the first casing has a first size from the first surface to the second surface, and
the second casing has a second size from the third surface to the fourth surface, and the second size is smaller than the first size.
3. The electronic apparatus of claim 2 , wherein
the first rotation engaging portion comprises a first helical gear,
the second rotation engaging portion comprises a second helical gear having an external diameter larger than an external diameter of the first helical gear, and
the transmission unit comprises a third helical gear disposed between the first helical gear and the second helical gear and in a direction orthogonal to a rotation center line, to link a rotation direction of the second helical gear oppositely to a rotation direction of the first helical gear.
4. The electronic apparatus of claim 2 , wherein
the first rotation engaging portion comprises a first spur gear,
the second rotation engaging portion comprises a second spur gear having an external diameter larger than an external diameter of the first spur gear, and
the transmission unit comprises at least two third spur gears disposed in parallel with the first spur gear and the second spur gear, to link a rotation direction of the second spur gear oppositely to a rotation direction of the first spur gear.
5. The electronic apparatus of claim 2 , wherein
the first rotation engaging portion comprises a first spur gear,
the second rotation engaging portion comprises a second spur gear, and
the transmission unit comprises at least one speed change gear having a speed change ratio to set a rotation angle of the second spur gear smaller than a rotation angle of the first spur gear, and a transmission gear disposed between the first spur gear and the speed change gear or between the second spur gear and the speed change gear, to link a rotation direction of the second spur gear oppositely to a rotation direction of the first spur gear.
6. The electronic apparatus of claim 2 , wherein
the first rotation engaging portion comprises a first cam roller including a first spiral groove in a cylindrical surface thereof parallel with the first shaft,
the second rotation engaging portion comprises a second cam roller including a second spiral groove in a direction opposite to a direction of the first spiral groove in a cylindrical surface thereof parallel with the second shaft, the cylindrical surface having an external diameter larger than an external diameter of the first cam roller, and
the transmission unit comprises an engaging element movable in a direction along centers of the first shaft and the second shaft, the engaging element is fitted at an equal position with the first spiral groove and the second spiral groove, to synchronize rotation angles of the first cam roller and the second cam roller.
7. The electronic apparatus of claim 2 , wherein
the first rotation engaging portion comprises a first cam roller including a first spiral groove in a cylindrical surface thereof parallel with the first shaft,
the second rotation engaging portion comprises a second cam roller including a second spiral groove in a direction opposite to a direction of the first spiral groove in a cylindrical surface thereof parallel with the second shaft, the cylindrical surface having an external diameter equal to an external diameter of the first cam roller, the second spiral groove having a spiral pitch larger than a spiral pitch of the first spiral groove, and
the transmission unit comprises an engaging element movable in a direction along centers of the first shaft and the second shaft, the engaging element is fitted at an equal position with the first spiral groove and the second spiral groove, to synchronize rotation angles of the first cam roller and the second cam roller.
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US15/429,995 US20170235337A1 (en) | 2016-02-11 | 2017-02-10 | Electronic apparatus comprising two casing coupled together with two-parallel-axis hinge |
US15/960,293 US10281951B2 (en) | 2016-02-11 | 2018-04-23 | Electronic apparatus comprising two casing coupled together with two-parallel-axis hinge |
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US201662294234P | 2016-02-11 | 2016-02-11 | |
US15/429,995 US20170235337A1 (en) | 2016-02-11 | 2017-02-10 | Electronic apparatus comprising two casing coupled together with two-parallel-axis hinge |
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US15/960,293 Division US10281951B2 (en) | 2016-02-11 | 2018-04-23 | Electronic apparatus comprising two casing coupled together with two-parallel-axis hinge |
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US15/960,293 Expired - Fee Related US10281951B2 (en) | 2016-02-11 | 2018-04-23 | Electronic apparatus comprising two casing coupled together with two-parallel-axis hinge |
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