Claims
- 1. An electromechanical actuator comprising:
a motor having a drive shaft; a drive shaft gear coupled to said drive shaft; a compound gear in meshing engagement with said drive shaft gear; a plurality of output gears in meshing engagement with said compound gear, a plurality of output ports associated with said plurality of output gears for providing a plurality of mechanical outputs from said actuator.
- 2. The actuator of claim 1, wherein said drive shaft gear is a worm gear and said compound gear is a worm wheel.
- 3. The actuator of claim 1, wherein said drive shaft gear is a pinion gear and said compound gear is a spur gear.
- 4. The actuator of claim 1, wherein said plurality of output gears comprises a first output gear and a second output gear, and said plurality of mechanical output ports comprises a first output port and second output port, said first output gear coupled to said first output port, and said second output gear coupled to said second output port.
- 5. The actuator of claim 4, wherein said plurality of output ports comprises a third output port, and wherein said second output gear is coupled to said second output port and said third output port.
- 6. The actuator of claim 1, further comprising an integral position sensor.
- 7. The actuator of claim 6, wherein said integral position sensor is selected from the group consisting of a non-contact pulse counting position sensor, a non-contact analog sensor, and a contact analog sensor.
- 8. The actuator of claim 6, wherein said actuator further comprises a printed circuit board and a microcontroller embedded in said printed circuit board, wherein said integral position sensor is a non-contact sensor, wherein said microcontroller is programmable based on a gear ratio of said actuator.
- 9. An adjustable pedal system for adjusting the position of a plurality of pedals in a passenger vehicle comprising:
a vehicle power source; an electromechanical actuator coupled to said vehicle power source, said actuator comprising:
a motor having a drive shaft; a drive shaft gear coupled to said drive shaft; a compound gear in meshing engagement with said drive shaft gear; a plurality of output gears in meshing engagement with said compound gear, a plurality of output ports associated with said plurality of output gears for providing a plurality of mechanical outputs from said actuator, wherein each one of said plurality of mechanical output ports is configured to drive an associated one of said plurality of pedals.
- 10. The system of claim 9, wherein said drive shaft gear is a worm gear and said compound gear is a worm wheel.
- 11. The system of claim 9, wherein said drive shaft gear is a pinion gear and said compound gear is a spur gear.
- 12. The system of claim 9, wherein said plurality of output gears comprises a first output gear and a second output gear, and said plurality of mechanical output ports comprises a first output port and second output port, said first output gear coupled to said first output port, and said second output gear coupled to said second output port.
- 13. The system of claim 12, wherein said plurality of output ports comprises a third output port, and wherein said second output gear is coupled to said second output port and said third output port.
- 14. The system of claim 9, further comprising an integral position sensor for sensing the position of said plurality of pedals relative a predetermined fixed location.
- 15. The system of claim 14, wherein said position sensor is automatically calibrated to said position of said plurality of pedals within one full actuation travel of said plurality of pedals.
- 16. The system of claim 14, wherein said integral position sensor is selected from the group consisting of a non-contact pulse counting position sensor, a non-contact analog sensor, and a contact analog sensor.
- 17. The system of claim 14, wherein said position sensor is a non-contact sensor, said non-contact sensor comprising: a magnet coupled to a rotating member of said actuator; a magnetic sensing circuit responsive to rotating movement of said magnet and configured to provide a digital pulse output associated with said rotating movement; a microcontroller configured to receive said digital pulses and determine a position for said plurality of pedals based on said digital pulses.
- 18. The system of claim 17, wherein said microcontroller is programmable for taking into account varying gear ratios for said actuator.
- 19. The system of claim 17, wherein said magnet is coupled to said output shaft of said motor, and said magnetic sensing circuit comprising a Hall Effect Switch, and wherein said magnetic sensing circuit and said microcontroller are embedded in a printed circuit board.
- 20. The system of claim 17, wherein said non-contact sensor is a non-contact analog senor, said non-contact analog sensor comprising a conversion circuit configured to accept a digital signal from said microcontroller indicative of said position of said plurality of pedals and convert said digital signal to an analog signal.
- 21. The system of claim 20, wherein said digital signal is a pulse width modulation signal and said analog signal is a voltage signal.
- 22. An electromechanical actuator comprising:
an isolator having an effective spring constant and damping constant, said isolator coupled to at least one component of said actuator for isolating said component from a remainder of said actuator to provide a desired affect to audible noise.
- 23. The actuator of claim 22, wherein said component is a motor.
- 24. The actuator of claim 23, wherein said isolator comprises a first isolator and a second isolator, said first isolator coupled to a first end of said motor and said second isolator coupled to a second end of said motor.
- 25. The actuator of claim 24, wherein said first and second isolator are comprised of elastomeric material.
- 26. The actuator of claim 23, wherein said actuator further has a first housing portion and a second housing portion configured to define a motor isolation cavity for housing and isolating said motor.
- 27. An electromechanical actuator comprising:
an isolator having an effective spring constant and damping constant, said isolator coupled to a sub-frame for isolating said sub-frame from a housing of said actuator, wherein said sub-frame is configured to enclose a plurality of components of said actuator.
- 28. The actuator of claim 27, wherein said plurality of components includes a motor, a drive gear, a compound gear, and output gears.
- 29. The actuator of claim 27, wherein said sub-frame has a top sub-frame housing portion and a bottom sub-frame housing portion, wherein said top sub-frame housing portion is a low density material and said bottom sub-frame housing portion is a high density material.
- 30. The actuator of claim 29, wherein said high density material is zinc.
- 31. The actuator of claim 29, wherein said low density material is plastic.
- 32. The actuator of claim 27, wherein said sub-frame has a top sub-frame housing portion and a bottom sub-frame housing portion, wherein said isolator comprises a plurality of isolators wherein at least a first isolator is coupled to said top sub-frame housing to isolate said top sub-frame housing from a top housing of said actuator, and at least a second isolator is coupled to said bottom sub-frame housing portion to isolate said bottom sub-frame housing portion from a bottom housing of said actuator.
- 33. An electromechanical actuator comprising:
a component isolator having an effective first spring constant and first damping constant, said component isolator coupled to at least one component of said actuator for isolating said component from a remainder of said actuator; and a sub-frame isolator having an effect second spring constant and second damping constant, said sub-frame isolator coupled to a sub-frame integral to a housing of said actuator, wherein said sub-frame encloses at least said component.
- 34. The actuator of claim 33, wherein said component is a motor.
- 35. The actuator of claim 34, wherein said component isolator comprises a first component isolator and a second component isolator, said first component isolator coupled to a first end of said motor and said second isolator coupled to a second end of said motor.
- 36. The actuator of claim 35, wherein said first and second component isolators are comprised of elastomeric material.
- 37. The actuator of claim 33, wherein said sub-frame further has a first sub-frame housing portion and a second sub-frame housing portion to define a motor isolation cavity for housing and isolating said motor within said sub-frame.
- 38. The actuator of claim 33, wherein said sub-frame has a top sub-frame housing portion and a bottom sub-frame housing portion, wherein said top sub-frame housing portion is a low density material and said bottom sub-frame housing portion is a high density material.
- 39. The actuator of claim 38, wherein said high density material is zinc.
- 40. The actuator of claim 38, wherein said sub-frame has a top sub-frame housing portion and a bottom sub-frame housing portion, wherein said sub-frame isolator comprises a plurality of sub-frame isolators wherein at least a first sub-frame isolator is coupled to said top sub-frame housing to isolate said top sub-frame housing from a top housing of said actuator, and at least a second sub-frame isolator is coupled to said bottom sub-frame housing portion to isolate said bottom sub-frame housing portion from a bottom housing of said actuator.
- 41. An electromechanical actuator comprising:
a motor having a drive shaft, a gear train coupled to said drive shaft, wherein said gear train comprises a plurality of output gears and an associated plurality of output ports for providing a mechanical output from said actuator.
- 42. An adjustable pedal system for adjusting the position of a plurality of pedals in a passenger vehicle comprising:
a vehicle power source; an electromechanical actuator coupled to said vehicle power source, said actuator comprising:
a motor having a drive shaft; a drive shaft gear coupled to said drive shaft; a compound gear in meshing engagement with said drive shaft gear; a plurality of output gears comprising at least a first output gear and a second output gear in meshing engagement with said compound gear, wherein said first output gear and said second output gear have different gear ratios; a plurality of output ports associated with said plurality of output gears for providing a plurality of mechanical outputs from said actuator, wherein each one of said plurality of mechanical output ports is configured to drive an associated one of said plurality of pedals, wherein pedals associated with said first output gear are driven at a rate different than pedals associated with said second output gear.
- 43. The system of claim 42, wherein said first output gear drives a brake pedal and said second output gear drives an accelerator pedal at relative rates based on said difference in output gear ratios to maintain a save step over distance between said brake pedal and said accelerator pedal regardless of a position of said pedals.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims the benefit of U.S. provisional application serial number 60/266,166, filed Feb. 2, 2001, and U.S. provisional application serial number 60/275,991 filed Mar. 15, 2001, the teachings of which are incorporated herein by reference.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60266166 |
Feb 2001 |
US |
|
60275991 |
Mar 2001 |
US |