Actuator
10465767 · 2019-11-05
Assignee
Inventors
- Shinichi Okada (Toyohashi, JP)
- Yasuhide Ito (Toyokawa, JP)
- Kohei Shibata (Kosai, JP)
- Takafumi Negi (Hamamatsu, JP)
Cpc classification
F16C35/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2361/61
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/1163
ELECTRICITY
F16H57/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/203
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/222
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/225
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01B7/14
PHYSICS
F16C19/543
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C35/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An actuator includes a motor having a rotation shaft, and an output shaft disposed coaxially to the rotation shaft. A rotation shaft side gear is provided so as to be rotatable as a unit with the rotation shaft, and an output shaft side gear is provided so as to be rotatable as a unit with the output shaft. An intermediate gear configuration body is provided between the rotation shaft side gear and the output shaft side gear. The intermediate gear configuration body includes a first intermediate gear that meshes with the rotation shaft side gear, and a second intermediate gear that is provided so as to be rotatable as a unit with the first intermediate gear and that meshes with the rotation shaft side gear. A detected portion is provided at an end portion of the intermediate gear configuration body and detects a rotation speed of the intermediate gear configuration body. A detecting portion detects the detected portion. The rotation shaft side gear, the first intermediate gear, the second intermediate gear, and the output shaft side gear are housed inside a gear housing that is disposed at one side in an axial direction of the motor, and the detecting portion is disposed outside of the gear housing.
Claims
1. An actuator comprising: a motor including a rotation shaft; an output shaft disposed coaxially to the rotation shaft; a rotation shaft side gear provided so as to be rotatable as a unit with the rotation shaft; an output shaft side gear provided so as to be rotatable as a unit with the output shaft; an intermediate gear configuration body provided between the rotation shaft side gear and the output shaft side gear, the intermediate gear configuration body including a first intermediate gear that meshes with the rotation shaft side gear, and a second intermediate gear that is provided so as to be rotatable as a unit with the first intermediate gear and that meshes with the output shaft side gear; a detected portion that is provided at an end portion of the intermediate gear configuration body and that detects a rotation speed of the intermediate gear configuration body; a detecting portion that detects the detected portion; a gear housing that is disposed at one side in an axial direction of the motor, a first bearing that supports an end portion of the intermediate gear configuration body at a side of the first intermediate gear; and a second bearing that supports another end portion of the intermediate gear configuration body at a side of the second intermediate gear, wherein the rotation shaft side gear, the first intermediate gear, the second intermediate gear, and the output shaft side gear are housed inside the gear housing, and wherein the detecting portion is disposed outside of the gear housing, wherein the intermediate gear configuration body has a shaft, the first intermediate gear is provided at one side in a length direction of the shaft and the second intermediate gear is provided at the other side in the length direction of the shaft, an axis direction of the shaft extends orthogonal to a rotation axis direction of the rotation shaft, wherein the detected portion is disposed and fixed at the length direction at one end side of the shaft of the intermediate gear configuration body so as to have a specific clearance from the detecting portion, and wherein the detected portion is fixed to one end portion in the length direction of the shaft of the intermediate gear configuration body, and the detected portion is located such that the second bearing is disposed between the detected portion and the first bearing.
2. The actuator of claim 1, wherein the detected portion is attached to the end portion of the intermediate gear configuration body at a second intermediate gear side, such that the detected portion is disposed at a side opposite to a side of the first bearing with the second bearing interposed between the second intermediate gear and the detected portion.
3. The actuator of claim 1, further comprising: a circuit board, mounted with the detecting portion, provided at one side in an axial direction of the intermediate gear configuration body; and a component attached to the circuit board, wherein the component and the output shaft side gear are disposed so as to overlap with each other as viewed along an axial direction of the output shaft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Preferred embodiments will be described in detail based on the following figures, wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
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DETAILED DESCRIPTION
(14) Explanation follows regarding an actuator 10 according to an exemplary embodiment of the present invention, with reference to
(15) As illustrated in
(16) As illustrated in
(17) The stator 20 is configured including a stator core 26 that includes twelve individual teeth portions 24 arrayed at uniform intervals around the circumferential direction, and twelve individual coils 28 formed by winding (concentrated winding) conductive wires onto each of the teeth 24 of the stator core 26. Then the current to each of the coils 28 is switched, so as to generate a rotating magnetic field. Moreover, the stator 20 is fixed to a motor housing 30 formed in a hat-shape open at one axial direction side (the arrow Z direction side), and, as illustrated in
(18) As illustrated in
(19) As illustrated in
(20) As illustrated in
(21) As illustrated in
(22) The pair of intermediate gear configuration bodies 46 are provided between the rotating shaft side gear 38 and the output shaft side gear 40, and, as viewed along the axial direction, the pair of intermediate gear configuration bodies 46 are disposed with point symmetry to each other, with the center of the rotation shaft 14 and the output shaft 16 as the center of symmetry, and the pair of intermediate gear configuration bodies 46 are disposed parallel to each other. Moreover, each of the intermediate gear configuration bodies 46 includes a metal rod shaped shaft portion 48 that extends in a direction orthogonal to the axial direction, with the first intermediate gear 42 and the second intermediate gear 44 respectively provided at one side and the other side in the length direction of the shaft portion 48.
(23) An end portion at one length direction side of the shaft portion 48 configures a first bearing fixing portion 48A on to which the inner race of a first bearing 50, serving as a first bearing, is fixed by press fitting. Moreover, an end portion at the other length direction side of the shaft portion 48 configures a second bearing fixing portion 48B on to which an inner race of a second bearing 52, serving as a second bearing configured with a larger diameter than the first bearing 50, is fixed by press fitting. Note that in the present exemplary embodiment, both length direction end portions of the shaft portion 48 are crimped at four places along the circumferential direction such that the first bearing 50 and the second bearing 52 cannot separate from the first bearing fixing portion 48A and the second bearing fixing portion 48B (see
(24) As illustrated in
(25) The second intermediate gear 44 is a hypoid pinion gear having thirteen teeth that meshes with the output shaft side gear 40. The second intermediate gear 44 is formed so as to narrow on progression toward the one length direction side of the shaft portion 48 (the first bearing fixing portion 48A side). Moreover, the second intermediate gear 44 is provided further to the one length direction side of the shaft portion 48 (the first bearing fixing portion 48A side) than the second bearing fixing portion 48B of the shaft portion 48. Moreover, in the present exemplary embodiment, the second intermediate gear 44 is formed to the location of the shaft portion 48 described above by performing rolling on a portion of the shaft portion 48. Moreover, when the output shaft 16 of the motor 12 is rotated clockwise as viewed from the one axial direction side of the output shaft 16 (rotated in the arrow CW direction), a thrust force F2 is produced in each of the intermediate gear configuration bodies 46 due to the second intermediate gears 44 meshing with the output shaft side gear 40. The angle of the second intermediate gear 44 with respect to the axial direction of the shaft portion 48 and the angle of the output shaft side gear 40 with respect to the radial direction of the output shaft 16 are set such that the direction of the thrust force F2 is a direction facing from the other side to the one side along the length of the shaft portion 48 (from the second bearing fixing portion 48B side to the first bearing fixing portion 48A side). Namely, the angles of the rotating shaft side gear 38, the first intermediate gear 42, the second intermediate gear 44, and the output shaft side gear 40 are set such that the direction of the thrust force F2 and the direction of the thrust force F1 produced in the intermediate gear configuration bodies 46 are opposite directions to each other. Moreover, in the present exemplary embodiment, the thrust force F1 produced in the intermediate gear configuration bodies 46 is smaller than the thrust force F2 during operation of the actuator 10.
(26) As illustrated in
(27) A rotation shaft insertion hole 58A through which the rotation shaft 14 is inserted is formed at a central portion in the radial direction of the gear housing body 58. Moreover, as illustrated in
(28) Moreover, as illustrated in
(29) Fixing the gear housing cover 60 described above to the gear housing body 58 through the bolts 74 (see
(30) Moreover, as illustrated in
(31) As illustrated in
(32) Moreover, the circuit board 80 is fixed to the gear housing body 58 through a circuit board support member, not illustrated in the drawings, in a state in which the circuit board 80 is disposed at the outside of the gear housing 54 (the outside of the gear housing chamber 56). Moreover, a circuit board covering member, not illustrated in the drawings, is attached to the gear housing body 58, thereby achieving a configuration in which the circuit board 80 is disposed inside a sealed space formed between the gear housing body 58 and the circuit board covering member. Moreover, in a state in which the circuit board 80 is fixed to the gear housing body 58, the Hall effect sensor 78 mounted to the circuit board 80 is disposed at the other length direction side of the shaft portion 48 of one of the intermediate gear configuration bodies 46, and is disposed with a specific clearance from the sensor magnet 76.
Operation and Advantageous Effects of Present Exemplary Embodiment
(33) Next, explanation follows regarding operation and advantageous effects of the present exemplary embodiment.
(34) As illustrated in
(35) In configurations in which an intermediate gear configuration body 46 is cantilever-supported, in order to suppress center misalignment of the intermediate gear configuration body 46 during operation of the actuator 10, it is conceivable that an increase in the thickness of the portion supporting the intermediate gear configuration body 46 will be necessary, or an increase in rigidity will be necessary, such as by increasing the diameter of the intermediate gear configuration body 46.
(36) However, in the present exemplary embodiment, as illustrated in
(37) Moreover, in the present exemplary embodiment, setting the diameter of the second bearing 52, that supports the thrust force, produced in each of the intermediate gear configuration bodies 46, larger than the diameter of the first bearing 50 enables the durability of the actuator 10 to be improved.
(38) Moreover, in the present exemplary embodiment, setting the angles of the rotating shaft side gear 38, the first intermediate gear 42, the second intermediate gear 44, and the output shaft side gear 40 with respect to a specific axis so that the direction of the thrust force F2 and the direction of the thrust force F1 produced in each of the intermediate gear configuration bodies 46 are in opposing directions to each other enables the thrust force input to the second bearing 52 from the intermediate gear configuration bodies (the combined force of the thrust force F1 and the thrust force F2) to be reduced. This thereby enables, in the present exemplary embodiment, the durability of the actuator 10 to be improved.
(39) Moreover, in the present exemplary embodiment, as illustrated in
(40) Moreover, in the present exemplary embodiment, as illustrated in
(41) Moreover, in the present exemplary embodiment, as illustrated in
(42) Moreover, in the present exemplary embodiment, as illustrated in
(43) Moreover, in the present exemplary embodiment, the sensor magnet 76 is attached to the end portion of the intermediate gear configuration body 46 at the second intermediate gear 44 side by using the sensor magnet support member 90, in a state in which the sensor magnet 76 is disposed at the opposite side with respect to the second bearing 52 to the first bearing 50 side. This thereby enables the sensor magnet 76 to be attached to the intermediate gear configuration body 46 in a state in which the first bearing 50 and the second bearing 52 have already been attached to the intermediate gear configuration body 46. This enables the shape of the sensor magnet 76 to be configured without restricted by the inner diameter of the second bearing 52. Namely, in the present exemplary embodiment, the flexibility for design of the sensor magnet 76 (especially relating to size) can be maintained.
(44) Moreover, in the present exemplary embodiment, by adopting a configuration in which space is not provided in the gear housing chamber 56 for disposing the circuit board 80 and the Hall effect sensor 78 mounted to the circuit board 80, the gear housing chamber 56 can be suppressed from increasing in volume, thereby enabling the axial direction dimension of the actuator 10 to be suppressed from increasing.
(45) Moreover, in the present exemplary embodiment, the rotation axis direction of the intermediate gear configuration body 46 and the rotation axis direction of the output shaft 16 are disposed orthogonal to each other. Disposing in this manner enables a reduction in the axial direction size of the actuator 10 to be achieved.
(46) In the present exemplary embodiment, explanation has been given regarding an example that includes a circuit board 80 mounted with a sensor magnet 76 for detecting the rotation speed and rotation angle of the output shaft 16 and a Hall effect sensor 78 for detecting the magnetism of the sensor magnet 76. However, the present invention is not limited thereto. For example, in an actuator where there is no need to control the rotation speed and rotation angle of the output shaft 16, configuration may be made in which the circuit board 80 mounted with the sensor magnet 76 and the Hall effect sensor 78 is not provided.
(47) Moreover, in the present exemplary embodiment, explanation has been given regarding an example in which the pair of intermediate gear configuration bodies 46 is provided between the rotating shaft side gear 38 and the output shaft side gear 40. However, the present invention is not limited thereto. For example, a single intermediate gear configuration body 46 may be provided between the rotating shaft side gear 38 and the output shaft side gear 40. The number of intermediate gear configuration bodies 46 may be appropriately set in this manner in consideration of the torque transmission capacity of the speed reduction mechanism 18 and the like.
(48) Moreover, in the present exemplary embodiment, explanation has been given regarding an example in which the actuator 10 is configured using a motor 12 in which the axial direction dimension H of the stator 20 is set shorter than the diameter direction dimension D of the stator 20. However, the present invention is not limited thereto. For example, an actuator may be configured using a motor in which the axial direction dimension of the stator is set longer than the diameter dimension of the stator. Moreover, the actuator may be configured using, for example, an outer rotor-type brushless motor or a direct current brush motor.
(49) Moreover, in the present exemplary embodiment, explanation has been given regarding an example in which the angles of the rotating shaft side gear 38, the first intermediate gear 42, the second intermediate gear 44, and the output shaft side gear 40 with respect to a specific axis are set such that the direction of the thrust force F2 and the direction of the thrust force F1 produced in the intermediate gear configuration bodies 46 are opposite directions to each other. However, the present invention is not limited thereto. The direction of the thrust force F2 and the direction of the thrust force F1 produced in the intermediate gear configuration bodies 46 may be appropriately set in consideration of, for example, processing costs for each of the gears configuring the speed reduction mechanism 18.
(50) Moreover, in the present exemplary embodiment, explanation has been given regarding an example in which the diameter of the second bearing 52 is set so as to be larger than the diameter of the first bearing 50. However, the present invention is not limited thereto. The diameter of the first bearing 50 and the second bearing 52 may be set appropriately in consideration of, for example, the lifespan required for the first bearing 50 and the second bearing 52.
(51) Moreover, in the present exemplary embodiment, explanation has been given regarding an example in which the end of the first intermediate gear 42 at the output shaft 16 side (the tooth tips 42A of the first intermediate gear 42) is disposed at further to the output shaft 16 side than the end of the output shaft side gear 40 at the motor side (the tooth tips 40A of the output shaft side gear 40) in a state in which the rotating shaft side gear 38, the intermediate gear configuration body 46, and the output shaft side gear 40 are housed in the gear housing chamber 56. However, the present invention is not limited thereto. Whether or not the first intermediate gear 42 and the output shaft side gear 40 are disposed as described above may be appropriately set in consideration of, for example, the speed reduction ratio of the speed reduction mechanism 18.
(52) Moreover, in the present exemplary embodiment, explanation been given regarding an example in which the rotation axis direction of the intermediate gear configuration body 46 and the rotation axis direction of the output shaft 16 are disposed orthogonal to each other. However, the present invention is not limited thereto. For example, the intermediate gear configuration body 46 may be disposed inclined with respect to a direction orthogonal to the axial direction of the output shaft 16, such that the second intermediate gear 44 is disposed further to the other axial direction side than the first intermediate gear 42.
(53) Moreover, in the present exemplary embodiment, explanation has been given regarding an example configured such that the flange portion 52B of the second bearing 52 is disposed (interposed) between the circumferential edge portion 58E of the second bearing support hole 58D and the second bearing retaining member 62, thereby restricting movement with respect to the gear housing body 58 of each of the intermediate gear configuration bodies 46 to which the first bearing 50 and the second bearing 52 are fixed. However, the present invention is not limited thereto. Namely, it is sufficient to provide a restriction portion to at least one out of the second bearing 52 or the intermediate gear configuration body 46 such that movement of the intermediate gear configuration body 46 with respect to the gear housing body 58 is restricted.
Modified Example of the Above Exemplary Embodiment
(54) Next, explanation follows regarding an actuator 82 according to a modified example of the above exemplary embodiment, with reference to
(55) As illustrated in
(56) In the present modified example explained above, the capacitor 88 and the output shaft side gear 40 attached to the circuit board 80 are disposed so as to overlap as viewed along the axial direction, thereby suppressing the capacitor 88 from protruding toward the radial direction outside of the actuator 82 with respect to the circuit board 80. This enables the size of the actuator 82 to be suppressed from increasing in the radial direction.
(57) Note that in the present modified example, explanation has been given regarding an example in which the capacitor 88 attached to the circuit board 80 and the output shaft side gear 40 are disposed so as to overlap with each other as viewed along the axial direction. However, the present invention is not limited thereto. For example, when a heat sink, transistor, or the like, attached to the circuit board 80 and the output shaft side gear 40 are disposed so as to overlap with each other as viewed along the axial direction, this also enables the actuator 82 to be suppressed from increasing in size in the radial direction.
(58) Although explanation has been given regarding an exemplary embodiment of the present invention, the present invention is not limited to the above description, and obviously various modifications other than those described may be made within a scope not departing from the spirit of the present invention.