Claims
- 1. An electromechanical actuator, comprising:
an electric motor; a conductive path normally connecting said motor for receiving a power supply input; an output gear coupled to an output shaft of said motor; and an output shaft structure coupled to said output gear to allow relative motion between said output shaft structure and said output gear upon application of a predetermined level of force to said output shaft structure, said relative motion opening said conductive path.
- 2. An actuator according to claim 1, wherein said output gear and said output shaft structure are coaxially coupled.
- 3. An actuator according to claim 1, wherein said output gear is coupled to said output shaft of said motor through a gear train.
- 4. A system according to claim 3, wherein said gear train comprises a motor worm gear coupled to said motor output shaft and in meshing engagement with a spur gear, said spur gear being coaxially coupled to a second worm gear in meshing engagement with said output gear.
- 5. An actuator according to claim 1, said actuator further comprising a spring disposed between said output gear and said output shaft structure, said spring being configured to deflect for permitting said relative motion upon application of said predetermined level of force.
- 6. An actuator according to claim 1, wherein said conductive path comprises at least one output gear contact coupled to said output gear, said output gear contact being normally electrically connected to at least one output shaft contact coupled to said output shaft structure, said output gear contact and said output shaft contact being configured to disengage from each other in response to said relative motion to thereby open said electrical path.
- 7. An actuator according to claim 6, wherein said actuator further comprises at least one stationary contact for engaging said output shaft contact in a range of motion of said output shaft structure.
- 8. An actuator according to claim 7, wherein movement of said output shaft contact beyond an end of said at least one stationary contact opens said conductive path to define a limit to said range of motion.
- 9. An actuator according to claim 6, wherein said actuator comprises a first stationary contact for engaging a first one of said output shaft contacts in a first direction of rotation of said output shaft, and a second stationary contact for engaging a second one of said output shaft contacts in a second direction of rotation of said output shaft, and wherein movement of said first output shaft contact beyond an end of said first stationary contact opens said conductive path to define a limit of rotation of said output shaft in said first direction, and wherein movement of said second output shaft contact beyond an end of said second stationary contact opens said conductive path to define a limit of rotation of said output shaft in said second direction.
- 10. An actuator according to claim 1, wherein said conductive path comprises at least one cam contact and at least one output shaft contact coupled to said output shaft structure, and wherein said output gear comprises at least one cam for depressing cam contact onto said output shaft contact, said cam being configured to release said cam contact from engagement with said output shaft contact in response to said relative motion to thereby open said electrical path.
- 11. An actuator according to claim 10, wherein said actuator further comprises at least one stationary contact for engaging said output shaft contact in a range of motion of said output shaft structure.
- 12. An actuator according to claim 11, wherein movement of said output shaft contact beyond an end of said at least one stationary contact opens said conductive path to define a limit to said range of motion.
- 13. An actuator according to claim 10, wherein said actuator comprises a first stationary contact for engaging a first one of said output shaft contacts in a first direction of rotation of said output shaft, and a second stationary contact for engaging a second one of said output shaft contacts in a second direction of rotation of said output shaft, and wherein movement of said first output shaft contact beyond an end of said first stationary contact opens said conductive path to define a limit of rotation of said output shaft in said first direction, and wherein movement of said second output shaft contact beyond an end of said second stationary contact opens said conductive path to define a limit of rotation of said output shaft in said second direction.
- 14. An actuator according to claim 1, said actuator further comprising a housing, said housing comprising a top portion disposed at least partially within a cap portion and rotatable relative to said cap portion, wherein said motor, said output gear, and said output shaft are coupled to said top portion for rotation upon manual rotation of said top portion relative to said cap portion.
- 15. A fuel filler valve system comprising:
a valve disposed between a vehicle fuel filler port and a vehicle fuel tank, said valve having an open and closed position; and an electromechanical actuator for moving said valve between said open and closed positions, said actuator comprising:
an electric motor; a conductive path normally connecting said motor for receiving a power supply input; an output gear coupled to an output shaft of said motor; and an output shaft structure, said output shaft structure having a first end coupled to said valve and a second end coupled to said output gear to allow relative motion between said output shaft structure and said output gear upon application of a predetermined level of force to said valve, said relative motion opening said conductive path.
- 16. A system according to claim 15, wherein said output gear and said output shaft structure are coaxially coupled.
- 17. A system according to claim 15, wherein said output gear is coupled to said output shaft of said motor through a gear train.
- 18. A system according to claim 17, wherein said gear train comprises a motor worm gear coupled to said motor output shaft and in meshing engagement with a spur gear, said spur gear being coaxially coupled to a second worm gear in meshing engagement with said output gear.
- 19. A system according to claim 15, wherein said valve is a ball valve.
- 20. A system according to claim 15, said actuator further comprising a spring disposed between said output gear and said output shaft structure, said spring being configured to deflect for permitting said relative motion upon application of said predetermined level of force.
- 21. A system according to claim 15, wherein said conductive path comprises at least one output gear contact coupled to said output gear, said output gear contact being normally electrically connected to at least one output shaft contact coupled to said output shaft structure, said output gear contact and said output shaft contact being configured to disengage from each other in response to said relative motion to thereby open said electrical path.
- 22. A system according to claim 21, wherein said actuator further comprises at least one stationary contact for engaging said output shaft contact in a range of motion of said output shaft structure.
- 23. A system according to claim 22, wherein movement of said output shaft contact beyond an end of said at least one stationary contact opens said conductive path to define a limit to said range of motion.
- 24. A system according to claim 21, wherein said actuator comprises a first stationary contact for engaging a first one of said output shaft contacts in a first direction of rotation of said output shaft, and a second stationary contact for engaging a second one of said output shaft contacts in a second direction of rotation of said output shaft, and wherein movement of said first output shaft contact beyond an end of said first stationary contact opens said conductive path to define a limit of rotation of said output shaft in said first direction, and wherein movement of said second output shaft contact beyond an end of said second stationary contact opens said conductive path to define a limit of rotation of said output shaft in said second direction.
- 25. A system according to claim 15, wherein said conductive path comprises at least one cam contact and at least one output shaft contact coupled to said output shaft structure, and wherein said output gear comprises at least one cam for depressing cam contact onto said output shaft contact, said cam being configured to release said cam contact from engagement with said output shaft contact in response to said relative motion to thereby open said electrical path.
- 26. A system according to claim 25, wherein said actuator further comprises at least one stationary contact for engaging said output shaft contact in a range of motion of said output shaft structure.
- 27. A system according to claim 26, wherein movement of said output shaft contact beyond an end of said at least one stationary contact opens said conductive path to define a limit to said range of motion.
- 28. A system according to claim 25, wherein said actuator comprises a first stationary contact for engaging a first one of said output shaft contacts in a first direction of rotation of said output shaft, and a second stationary contact for engaging a second one of said output shaft contacts in a second direction of rotation of said output shaft, and wherein movement of said first output shaft contact beyond an end of said first stationary contact opens said conductive path to define a limit of rotation of said output shaft in said first direction, and wherein movement of said second output shaft contact beyond an end of said second stationary contact opens said conductive path to define a limit of rotation of said output shaft in said second direction.
- 29. A system according to claim 15, said actuator further comprising a housing, said housing comprising a top portion disposed at least partially within a cap portion and rotatable relative to said cap portion, wherein said motor, said output gear, and said output shaft are coupled to said top portion for rotation upon manual rotation of said top portion relative to said cap portion.
- 30. A method of providing pinch protection in a movable mechanism, said method comprising:
coupling said mechanism to an output shaft structure, said output shaft structure being coupled to an output gear for allowing relative motion therebetween upon application of a predetermined level of force to said output shaft structure, said output shaft structure and said output gear establishing a conductive path to a motor for driving said output shaft structure through said output gear, said conductive path being configured to open in response to said relative motion; and energizing said motor to drive said mechanism.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims the benefit of the filing date of U.S. Provisional Application No. 60/188,742 filed Mar. 13, 2000, the teachings of which are incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60188742 |
Mar 2000 |
US |