Electromagnetic spring and elastic actuator having the same
10367394 ยท 2019-07-30
Assignee
Inventors
- Han-Ping Yang (Hsinchu, TW)
- Chau-Shin Jang (Hsinchu County, TW)
- Jih-Yang Chang (Taoyuan, TW)
- Hsin-Tien Yeh (Taichung, TW)
- Tsu-Min Liu (Zhubei, TW)
Cpc classification
F16H1/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B25J19/068
PERFORMING OPERATIONS; TRANSPORTING
International classification
H02K7/00
ELECTRICITY
F16F15/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An elastic actuator is provided, which may include a position motor and an electromagnetic spring. The position motor may include a motor output shaft. The electromagnetic spring may include a rotor, a stator and a gear set. The stator may drive the rotor to rotate. The gear set may include a first output shaft, a second output shaft and an output shaft; the first input shaft may connect the motor output shaft, and the second input may connect to the rotor. The power generated by the rotor and the power generated by the position motor may be outputted from the output shaft after being coupled via the gear set.
Claims
1. An electromagnetic spring, comprising: a rotor; a stator, operable to drive the rotor to rotate; a planetary gear set, comprising a sun gear, a ring gear and a planet carrier, wherein the sun gear connects to a motor output shaft of a position motor, the ring gear connects to the rotor, and a power generated by the rotor and a power generated by the motor output shaft of the position motor and inputted into the sun gear are coupled via the planetary gear set, and then outputted from the planet carrier.
2. The electromagnetic spring of claim 1, wherein the stator is hollow, and the rotor is disposed in an accommodating space inside the stator.
3. The electromagnetic spring of claim 1, wherein a slot number of the electromagnetic spring is an integral multiple of a pole number of the electromagnetic spring.
4. The electromagnetic spring of claim 1, wherein a slot number of the electromagnetic spring is 18 and a pole number of the electromagnetic spring is 18.
5. The electromagnetic spring of claim 1, wherein the stator comprises a stator coil and a stator lamination; the stator lamination comprises a plurality of first stator teeth and the stator coil is wound on the first stator teeth.
6. The electromagnetic spring of claim 2, wherein the rotor is hollow, and the planetary gear set is disposed in an accommodating space inside the rotor.
7. The electromagnetic spring of claim 5, wherein the stator coil is a single phase serial winding.
8. The electromagnetic spring of claim 5, wherein the stator lamination further comprises a plurality of second stator teeth, and a tooth shoe of each of the second teeth mounts a magnet.
9. The electromagnetic spring of claim 6, further comprises a rear cover, wherein the rear cover is hollow, and the rotor, the stator and the planetary gear set are disposed on the rear cover.
10. An elastic actuator, comprising: a position motor, comprising a motor output shaft; and an electromagnetic spring, comprising: a rotor; a stator, operable to drive the rotor to rotate; a planetary gear set, comprising a sun gear, a ring gear and a planet carrier, wherein the sun gear connects to the motor output shaft of the position motor, and the second input shaft ring gear connects to the rotor; a power generated by the rotor and a power generated by the motor output shaft of the position motor and inputted into the sun gear are coupled via the planetary gear set, and then outputted from the planet carrier.
11. The elastic actuator of claim 10, wherein the stator is hollow, and the rotor is disposed in an accommodating space inside the stator.
12. The elastic actuator of claim 10, wherein a slot number of the electromagnetic spring is an integral multiple of a pole number of the electromagnetic spring.
13. The elastic actuator of claim 10, wherein a slot number of the electromagnetic spring is 18 and a pole number of the electromagnetic spring is 18.
14. The elastic actuator of claim 10, wherein the stator comprises a stator coil and a stator lamination; the stator lamination comprises a plurality of first stator teeth and the stator coil is wound on the first stator teeth.
15. The elastic actuator of claim 10, wherein the position motor is a servo motor.
16. The elastic actuator of claim 11, wherein the rotor is hollow, and the planetary gear set is disposed in an accommodating space inside the rotor.
17. The elastic actuator of claim 14, wherein the stator coil is a single phase serial winding.
18. The elastic actuator of claim 14, wherein the stator lamination further comprises a plurality of second stator teeth, and a tooth shoe of each of the second teeth mounts a magnet.
19. The elastic actuator of claim 16, wherein the electromagnetic spring further comprises a rear cover and the rear cover is hollow; the rotor, the stator and the planetary gear set are disposed on the rear cover.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure will become more fully understood from the detailed description given herein below and the accompanying drawings which are given by way of illustration only, and thus are not limitative of the present disclosure and wherein:
(2)
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DETAILED DESCRIPTION
(12) In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
(13) Please refer to
(14) As shown in
(15) The stator may be hollow, and may include a stator lamination 2421 and a stator coil 2422.
(16) The rotor may be hollow, and may include a back iron 2411 and a magnet set 2422; the rotor 241 may be disposed in the accommodating space inside the stator 242, and the gear set 23 may be disposed in the accommodating space inside the rotor 241.
(17) The slot number of the stator 242 may be the integral multiple of the pole number of the rotor 241, so the electromagnetic spring 24 may have higher elasticity coefficient; in the embodiment, the slot number of the stator 242 may be 18, and the pole number of the rotor 241 may be also 18.
(18) As shown in
(19) The ring gear 232 may be the first input shaft, and the sun gear 231 may be the second input shaft. The sun gear 231, the ring gear 232, the planet carrier 233 and the planet gears 234 may be coupled with one another.
(20) The planet carrier 233 may include a planet carrier front cover 2311 and a planet carrier rear cover 2332; the planet carrier front cover 2311 may include a cup-shaped planet carrier extension part E, which may serve as the output shaft of the electromagnetic spring 24.
(21) The gear set 23 may be disposed in the accommodating space inside the rotor 241, and the ring gear 232 of the gear set 23 may connect to rotor 241; the power generated by the rotor 241 and the power inputted from the sun gear 231 may be coupled and then outputted from the planet carrier 233.
(22) As described above, the stator 242 and the rotor 241 of the electromagnetic spring 24 may be hollow, so the rotor 241 may be disposed in the accommodating space inside the stator 242, and the gear set 23 may be disposed in the accommodating space of the rotor 241. In the other words, the gear set 23 may be directly integrated with the spring main body SB of the electromagnetic spring 24. The above special structure design can significantly decrease the size of the electromagnetic spring 24. In addition, the elasticity coefficient of the electromagnetic spring 24 can be directly adjusted by controlling the current in order to change its output stiffness; thus, the electromagnetic spring 24 can have high operation response.
(23) Please refer to
(24) As shown in
(25) The stator coil 2422 may be the single phase serial winding.
(26) The stator lamination 2421 may include a plurality of first stator teeth 24211A, and the stator coil 2422 may be wound on the first stator teeth 24211A. Besides, in the embodiment, the stator lamination 2421 may further include a pair of second stator teeth 24211B, and the second stator tooth 24211B may be slightly shorter than the first stator tooth 24211A; therefore, a space may be formed between the tooth shoe of each of the second stator teeth 24211B and the rotor 241, and the tooth shoe of each of the second stator teeth 24211B may mount a magnet ES. The special magnet auxiliary structure composed of the second stator teeth 24211B and the magnets ES can effectively increase the electromagnetic field generated by the stator coil 2422, so the electromagnetic spring 24 can still provide the spring effect without power supply. In this way, the electromagnetic spring 24 can have better performance.
(27) Please refer to
(28) The magnet auxiliary structure of the electromagnetic spring 24 of the embodiment may be modified according to the requirements; as shown in
(29) As shown in
(30) The above structures are just examples, which will not limit the scope of the present disclosure.
(31) Please refer to
(32) As shown in
(33) As shown in
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(35) As described above, the elastic actuator 2 can directly use the electromagnetic spring 24 to adjust its output stiffness, the overall structure of the elastic actuator 2 can be simplified; therefore, the size, weight and cost of the elastic actuator 2 can be significantly reduced.
(36) It is worthy to point out that the elastic actuator, according to one embodiment of the present disclosure, may include an electromagnetic spring, so the output stiffness of the elastic actuator can be freely adjusted according to the requirements, which is more flexible in use.
(37) According to one embodiment of the present disclosure, the elastic actuator may adopt the electromagnetic spring, so the size and the weight of the elastic actuator can be significantly reduced.
(38) According to one embodiment of the present disclosure, the elastic actuator may adopt the electromagnetic spring, so the overall structure of the elastic actuator can be simplified; thus, the cost of the electromagnetic spring can be reduced.
(39) Also, according to one embodiment of the present disclosure, the electromagnetic spring can be controlled by adjusting current, so the operation response of the electromagnetic spring can be very high.
(40) Besides, according to one embodiment of the present disclosure, the slot number of the electromagnetic spring is the integral multiple of its pole number, so the elasticity coefficient of the electromagnetic spring can dramatically increase.
(41) Moreover, according to one embodiment of the present disclosure, the stator coil of the electromagnetic spring may adopt single phase serial winding, which further simplifies the structure of the electromagnetic spring; thus, the cost of the electromagnetic spring can be further reduced.
(42) Furthermore, according to one embodiment of the present disclosure, the stator of the electromagnetic spring may include a magnet auxiliary structure, which may increase the electromagnetic field generated by the stator coil, so the electromagnetic spring can still provide the spring effect without power supply; therefore, the electromagnetic spring can have better performance.
(43) Please refer to
(44) To sum up, according to one embodiment of the present disclosure, the elastic actuator may include an electromagnetic spring, so the output stiffness of the elastic actuator can be freely adjusted according to the requirements.
(45) According to one embodiment of the present disclosure, the elastic actuator may adopt the electromagnetic spring, so the size and the weight of the elastic actuator can be significantly reduced.
(46) According to one embodiment of the present disclosure, the elastic actuator may adopt the electromagnetic spring, so the overall structure of the elastic actuator can be simplified; thus, the cost of the electromagnetic spring can be reduced.
(47) According to one embodiment of the present disclosure, the electromagnetic spring can be controlled by adjusting current, so the operation response of the electromagnetic spring can be very high.
(48) According to one embodiment of the present disclosure, the slot number of the electromagnetic spring is the integral multiple of its pole number, so the elasticity coefficient of the electromagnetic spring can dramatically increase.
(49) According to one embodiment of the present disclosure, the stator coil of the electromagnetic spring may adopt single phase serial winding, which further simplifies the structure of the electromagnetic spring; thus, the cost of the electromagnetic spring can be further reduced.
(50) According to one embodiment of the present disclosure, the stator of the electromagnetic spring may include a magnet auxiliary structure, which may increase the electromagnetic field generated by the stator coil, so the electromagnetic spring can still provide the spring effect without power supply; therefore, the electromagnetic spring can have better performance.
(51) It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments. It is intended that the specification and examples be considered as exemplary only, with a true scope of the disclosure being indicated by the following claims and their equivalents.