Claims
- 1. A position control actuator system comprising:
a control element; first and second actuators each comprised of magneto-active twinned material; the first actuator configured to extend and drive said control element in a first direction when said first actuator is subjected to a magnetic field; the second actuator configured to extend and drive said control element in a second direction when said second actuator is subjected to a magnetic field; and a magnetic field source subsystem configured to:
extend the first actuator to drive the control element in the first direction, and extend the second actuator to drive the control element in the second direction.
- 2. The position control actuator system of claim 1 in which the magnetic field source subsystem includes at least one magnetic field source for each actuator.
- 3. The position control actuator of claim 2 in which the magnetic field source subsystem includes a pair of coils for each actuator.
- 4. The position control actuator of claim 1 in which the magnetic field source subsystem is structured and arranged to extend the first actuator and the second actuators alternately.
- 5. The position control actuator of claim 1 in which the magnetic field source subsystem is structured and arranged to extend the first and second actuators simultaneously.
- 6. The position control actuator of claim 1 in which the first direction is toward the second actuator and in which the control element is configured to compress the second actuator when the first actuator extends.
- 7. The position control actuator of claim 6 in which the second direction is toward the first actuator and in which the control element is configured to compress the first actuator when the second actuator extends.
- 8. The position control actuator system of claim 1 further including a controller operable to energize said magnetic field subsystem.
- 9. The position control actuator system of claim 1 in which the magnetic field source subsystem includes at least a first electromagnetic coil wound to produce a magnetic field transversely through the first actuator.
- 10. The position control actuator system of claim 9 in which the magnetic field source subsystem includes at least a second electromagnetic coil wound to produce a magnetic field transversely through the second actuator.
- 11. The position control actuator system of claim 1 in which the control element has opposing ends in contact with the first and second actuators.
- 12. The position control actuator system of claim 1 in which the control element includes at least one passage therethrough.
- 13. The position control actuator system of claim 1 in which the control element includes at least one valve head.
- 14. The position control actuator system of claim 1 in which the control element is monolithic.
- 15. The position control actuator system of claim 1 in which the control element is comprised of a first portion which does not project into magnetic fields generated by the magnetic field subsystem, and at least a second portion that projects into magnetic fields generated by the magnetic field subsystem.
- 16. The position control actuator system of claim 15 in which the first portion is comprised of composite material.
- 17. The position control actuator system of claim 16 in which at least the second portion is comprised of non-magnetic material.
- 18. The position control actuator system of claim 1 in which the control element is comprised of aluminum.
- 19. The position control actuator system of claim 1 in which at least one actuator is comprised of ferromagnetic shape memory alloy.
- 20. The position control actuator system of claim 1 in which at least one actuator is comprised of magnetically controllable memory alloy.
- 21. The position control actuator system of claim 1 in which the magneto-active twinned material of at least one actuator is configured to permit movement of twin boundaries therein.
- 22. The position control actuator system of claim 10 further including a housing about the control element and the first and second actuators.
- 23. The position control actuator system of claim 22 in which the housing includes portions about the first and second electromagnetic coils, said portions comprised of magnetic material.
- 24. The position control actuator system of claim 23 in which the magnetic material is silicon iron.
- 25. The position control actuator system of claim 22 in which the housing includes at least one flow port therethrough.
- 26. The position control actuator system of claim 25 in which at least one passage in the control element is in communication with at least one flow port in the housing.
- 27. The position control actuator of claim 1 in which a center point of the control element is in a neutral position.
- 28. The position control actuator of claim 1 further including a first end cap for inhibiting movement of the first actuator in a direction away from the control element.
- 29. The position control actuator of claim 28 further including a second end cap for inhibiting movement of the second actuator in a direction away from the control element.
- 30. The position control actuator of claim 29 in which the first and second end caps are comprised of non-magnetic material.
- 31. The position control actuator of claim 30 in which the non-magnetic material is aluminum.
- 32. The position control actuator of claim 8 in which the controller includes a processor structured and arranged to determine the position of said control element based on the inductance of one of said actuators.
- 33. The position control actuator of claim 32 in which said processor applies a voltage input step signal to at least one magnetic field source in said magnetic field subsystem and measures electrical current time response of said at least one magnetic field source to determine said inductance.
- 34. The position control actuator of claim 1 in which the control element is a spool.
- 35. The position control actuator of claim 1 in which the control element is a poppet.
- 36. The position control actuator of claim 32 in which at least one end of the control element is a valve head which seats in a valve seat of a stopper element.
- 37. The position control actuator of claim 1 in which the first direction and the second direction are opposite directions.
- 38. A position control actuator system comprising:
a control element; first and second actuators each comprised of magneto-active twinned material; the first actuator configured to drive said control element to compress the second actuator when said first actuator is subjected to a magnetic field; the second actuator configured to drive said control element to compress said first actuator when said second actuator is subjected to a magnetic field; and a magnetic field source for each actuator configured to extend the first actuator, drive the control element in one direction, and compress the second actuator; and to extend the second actuator, drive the control element in another direction, and compress the first actuator.
- 39. A position control actuator system comprising:
a control device having opposing ends; at least first and second actuators, one at each of the opposing ends of the control device, said actuators comprised of magneto-active twinned material configured to permit movement of twin boundaries therein; and at least first and second magnetic field sources, one for each of said actuators, said magnetic field sources structured and arranged to apply at least one magnetic field to at least one of said actuators for driving the control device between said actuators.
- 40. A position control actuator system comprising:
a control element; at least first and second actuator elements, each comprised of magneto-active twinned material configured to permit movement of twin boundaries therein; at least first and second magnetic field sources, one for each of said actuator elements; and a controller structured and arranged to generate signals to one or both of said magnetic field sources to apply a magnetic field to at least one of said actuator elements to drive the control element between said actuator elements.
- 41. A position control actuator system comprising:
a control element; at least first and second actuator elements, each said actuator elements comprised of magneto-active twinned material configured to permit movement of twin boundaries therein; and a magnetic field source for applying a magnetic field to at least one of said actuator elements for driving the control element.
- 42. A spool valve comprising:
a spool having opposing ends; at least first and second actuators, one at each of the opposing ends of the spool, said actuators comprised of magneto-active twinned material configured to permit movement of twin boundaries therein; at least first and second magnetic field sources, one for each of said actuators, said magnetic field sources structured and arranged to apply at least one magnetic field to at least one of said actuators for extending at least one of said actuators and for driving the spool between said actuators; and a body surrounding the spool and the actuators.
- 43. The spool valve of claim 42 in which said body includes endcaps for inhibiting extension of said actuator elements in a direction away from said spool.
- 44. The spool valve of claim 43 in which the end caps are comprised of non-magnetic material.
- 45. The spool valve of claim 43 in which said body further includes at least one flow port for fluid flow through said body.
- 46. The spool valve of claim 45 in which said spool includes at least one flow passage therethrough for fluid flow through said spool.
- 47. The spool valve of claim 46 in which at least one flow port in the body is in communication with at least one flow passage in the spool.
- 48. The spool valve of claim 46 in which no flow passage in the spool is in communication with a flow port in the body.
- 49. The spool valve of claim 42 further including a controller operable to energize the first and second magnetic field sources.
- 50. The spool valve of claim 42 in which the first and second magnetic field sources are each comprised of electromagnetic coils.
- 51. The spool valve of claim 42 in which the spool is comprised of non-magnetic magnetic material at said opposing ends.
- 52. A poppet valve comprising:
a poppet having a valve head; at least first and second actuators, one at each of the opposing ends of the poppet, said actuators comprised of magneto-active twinned material configured to permit movement of twin boundaries therein; at least first and second magnetic field sources, one magnetic field source for each said actuator, said magnetic field sources structured and arranged to apply a magnetic field to at least one of said actuators for driving the poppet; and a stopper element having a valve seat for receiving the valve head of the poppet for controlling fluid flow.
- 53. The poppet valve of claim 52 in which said actuators are in contact with said poppet.
- 54. The poppet valve of claim 52 in which said actuators are configured about opposing ends of said poppet.
- 55. The poppet valve of claim 52 in which said magnetic field sources include electromagnetic coils.
- 56. A method of actuating a control element driven by first and second actuators each comprised of magneto-active twinned materials, the method comprising:
subjecting the first actuator to a magnetic field to extend the first actuator, drive the control element in one direction, and compress the second actuator; and subjecting the second actuator to a magnetic field to extend the second actuator, drive the control element in another direction, and compress the first actuator.
- 57. The method of actuating a control element of claim 56 further including energizing at least one of said magnetic fields with signals from a controller.
- 58. The method of actuating a control element of claim 56 in which subjecting the first actuator to a magnetic field includes subjecting the first actuator to a transverse magnetic field.
- 59. The method of actuating a control element of claim 56 in which subjecting the second actuator to a magnetic field includes subjecting the second actuator to a transverse magnetic field.
- 60. The method of actuating a control element of claim 56 in which the first actuator is fully extended.
- 61. The method of actuating a control element of claim 56 in which the first actuator is partially extended.
- 62. The method of actuating a control element of claim 56 in which the second actuator is fully extended.
- 63. The method of actuating a control element of claim 56 in which the second actuator is partially extended.
- 64. A method of position control actuation, the method comprising:
driving a control element with a first actuator to compress a second actuator by subjecting the first actuator to a magnetic field; driving the control element with the second actuator to compress the first actuator by subjecting the second actuator to a magnetic field; applying a magnetic field to the first actuator to extend the first actuator, drive the control element in one direction, and compress the second actuator; and applying a magnetic field to the second actuator to extend the second actuator, drive the control element in another direction, and compress the first actuator.
- 65. The method of position control actuation of claim 64 in which the first actuator is fully compressed.
- 66. The method of position control actuation of claim 64 in which the first actuator is partially compressed.
- 67. The method of position control actuation of claim 64 in which the second actuator is fully compressed.
- 68. The method of position control actuation of claim 64 in which the second actuator is partially compressed.
- 69. A method of position control actuation, the method comprising:
providing a control element having opposing ends; disposing the control element between a first actuator and a second actuator, said first and second actuators comprised of magneto-active twinned material configured to permit movement of twin boundaries; and applying at least one magnetic field to at least one of said first and second actuators for driving said control element between said first and second actuators.
- 70. A method of actuating a spool of a spool valve driven by first and second actuators each comprised of magneto-active twinned materials, the method comprising:
subjecting the first actuator to a magnetic field to extend the first actuator, drive the spool in one direction, and compress the second actuator; and subjecting the second actuator to a magnetic field to extend the second actuator, drive the spool in another direction, and compress the first actuator.
- 71. The method of actuating a spool of a spool valve of claim 70 further including energizing at least one of said magnetic fields with signals from a controller.
- 72. The method of actuating a spool of a spool valve of claim 70 in which subjecting the first actuator to a magnetic field includes subjecting the first actuator to a transverse magnetic field.
- 73. The method of actuating a spool of a spool valve of claim 70 in which subjecting the second actuator to a magnetic field includes subjecting the second actuator to a transverse magnetic field.
- 74. The method of actuating a spool of a spool valve of claim 70 further including disposing an endcap adjacent one end of said first actuator to inhibit extension of said first actuator in a direction away from said spool.
- 75. The method of actuating a spool of a spool valve of claim 70 further including disposing an endcap adjacent one end of said second actuator to inhibit extension of said second actuator in a direction away from said spool.
- 76. A method of spool valve actuation, the method comprising:
providing a spool having opposing ends; disposing the spool between a first actuator and a second actuator, said first and second actuators comprised of magneto-active twinned material configured to permit movement of twin boundaries; and applying at least one magnetic field to at least one of said first and second actuators for driving said spool between said first and second actuators.
- 77. A method of poppet valve actuation, the method comprising:
providing a valve body including a valve head and first and second opposing ends; disposing a stopper element including a valve seat opposite said valve head, said valve seat configured to receive said valve head; disposing first and second actuators at the opposing ends of the valve body; and applying a magnetic field to at least one of said actuators for driving the valve body between said actuators.
- 78. The method of poppet valve actuation of claim 77 in which applying a magnetic field to the first actuator element drives the valve body in a first direction wherein the valve head seats in the valve seat.
- 79. The method of poppet valve actuation of claim 77 in which applying a magnetic field to the second actuator element drives the valve body in a second direction wherein the valve head moves in a direction away from the valve seat.
- 80. The method of poppet valve actuation of claim 77 in which applying a magnetic field to each of the first and second actuator elements positions the valve body in a neutral position.
- 81. A method of poppet valve actuation, the method comprising:
providing a poppet having opposing ends; disposing the poppet between a first actuator and a second actuator, said first and second actuators comprised of magneto-active twinned material configured to permit movement of twin boundaries; and applying at least one magnetic field to at least one of said first and second actuators for driving said poppet between said first and second actuators.
RELATED APPLICATIONS
[0001] This application claims benefit of U.S. Provisional Patent Application Serial No. 60/450,153 filed Feb. 26, 2003, which is fully incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60450153 |
Feb 2003 |
US |