Claims
- 1. A hybrid isolator-actuator comprising:
a housing, and a carriage, wherein the carriage is further comprised of a piston attached to a journal shaft and a coil attached to the journal shaft wherein the piston is constrained to move within a cylindrical sleeve fixed internally to the housing and the coil is constrained to move within a magnetic actuator body fixed internal to the housing such that the carriage moves and is position-controlled relative to the housing by the combination of pneumatic forces applied to the piston and magnetic forces applied to the coil.
- 2. The hybrid isolator-actuator of claim 1 wherein the pneumatic forces are effected by at least one gas chosen from a list comprised of air, nitrogen, argon and helium.
- 3. The hybrid isolator-actuator of claim 1 wherein the piston is comprised of air bearing construction such that the piston rides within the cylindrical sleeve upon a gas film, and such that the piston does not touch the cylindrical sleeve.
- 4. The hybrid isolator-actuator of claim 3 wherein the gas film upon which the piston rides is formed from gas applied to the bottom of the piston.
- 5. The hybrid isolator-actuator of claim 4 wherein the carriage is further comprised of a lower air bearing wherein the lower air bearing is of cylindrical form and encompasses the cylindrical sleeve mounted to the housing and such that the piston and lower air bearing follow and ride along air films on the interior and exterior cylindrical surfaces of the cylindrical sleeve such that a frictionless cylindrical air bearing is effected upon the carriage.
- 6. The hybrid isolator-actuator of claim 5 wherein the journal shaft is supported by an upper air bearing mounted to the interior of the housing at an end opposite to the mounting of the cylindrical sleeve such that air bearing support is effected at both ends of the carriage by the upper and lower air bearings.
- 7. The hybrid isolator-actuator of claim 6 wherein air expelled from the piston and air bearings is channeled over the coil and magnetic actuator body so to provide cooling of the coil and magnetic actuator body.
- 8. The hybrid isolator-actuator of claim 7 further comprised of a bellows mounted to an exposed end of the journal shaft and to the housing and further comprised of air bearing feed and return fittings mounted to the housing, such that the housing and bellows effect an airtight enclosure and the feed and return fittings provide air supply and exhausting of the air bearings and piston such that the hybrid isolator-actuator air is completely contained.
- 9. The hybrid isolator-actuator of claim 1 further comprising a first rotational joint attached to the housing and a second rotational joint attached to the carriage wherein each rotational joint is a joint selected from the group comprised of spherical joints and universal joints.
- 10. The hybrid isolator-actuator of claim 1 further comprising a displacement sensor mounted between the carriage and the housing for providing position and extension information of the hybrid isolator-actuator.
- 11. The hybrid isolator-actuator of claim 1 further comprising an air tank such that the air tank is in gas pressure communication with the volume below the piston within the cylindrical sleeve and wherein the air tank is of a prescribed volume to provide a prescribed air-spring stiffness to the hybrid isolator-actuator.
- 12. The hybrid isolator-actuator of claim 1 further comprising a dynamic pressure control system further comprising a pneumatic proportional servo-valve such that gas pressure beneath the piston is controlled to provide a prescribed pneumatic force by the hybrid isolator-actuator.
- 13. The hybrid isolator-actuator of claim 12 further comprising a pressure sensor and an electronic controller wherein the pressure sensor elicits a signal proportionate to the instantaneous actual pressure applied to the piston of the hybrid isolator-actuator and wherein the electronic controller determines the difference between commanded pressure and the instantaneous actual pressure of the isolator-actuator and produces a current through the coil of the hybrid isolator-actuator of such magnitude and sign as to exactly correct for the pneumatic actuator force error resulting from the difference between the commanded pressure and the instantaneous actual pressure.
- 14. The hybrid isolator-actuator of claim 1 further comprising an extension limiting device that limits the relative motion of the carriage to the housing upon loss of power to the hybrid isolator-actuator.
- 15. A vibration isolation, position actuation device comprising:
a pneumatic actuator, a pressure servo-valve, an air pressure supply, a coil and magnet, a state variable sensor, and a control unit wherein the pressure servo-valve accepts an input command signal and modulates the air pressure supply which is applied to the pneumatic actuator, wherein the state variable sensor measures a state variable of the pneumatic actuator resulting from the applied modulated air pressure supply, wherein the control unit determines the error existing in the measured state variable relative to the command signal, and wherein the control unit modulates electrical current applied to the coil such that a magnetic force is applied to the pneumatic actuator by the magnet in such proportion to negate the measured error in the state variable of the pneumatic actuator.
- 16. The device of claim 15 further comprising an air tank connected to the pneumatic actuator such that the combined air volume of the pneumatic actuator and air tank provide an air volume yielding a prescribed air-spring stiffness.
- 17. The device of claim 15 wherein the pneumatic actuator is further comprised of a carriage and a housing wherein the carriage is constrained to move within the housing upon air bearings such that frictionless motion of the carriage is achieved.
- 18. The device of claim 17 wherein the coil is attached to one of the carriage and housing and the magnet is attached to the other.
- 19. The device of claim 15 wherein the state variable sensor is a pressure transducer positioned to read the pressure applied to the pneumatic actuator and yield an amplified voltage equal to the force resulting from the pneumatic actuator.
- 20. The device of claim 19 wherein the control unit compares the amplified voltage from the pressure transducer to the input command signal to determine a force error measurement of the pneumatic actuator such that the control unit is then enabled to apply the force error measurement directly as an input current to the coil.
- 21. A method for supporting and positioning a payload effecting simultaneous vibration isolation and large force and stroke position actuation comprising the steps of:
a) supporting the payload on a gas piston, b) commanding gas pressure applied to the gas piston with a pneumatic servo-valve, c) measuring the error in pressure resulting upon the gas piston, d) applying a magnetic force in parallel to the resulting pressure in proportion to the measured pressure error.
- 22. The method of claim 21 wherein the step a) of supporting the payload is further comprised of sizing a gas tank and a cylinder supporting the piston to a volume providing a gas-spring stiffness to yield a desired low vibration isolation frequency of the payload.
- 23. The method of claim 21 wherein the step d) of applying a magnetic force in parallel is further comprised of applying a magnetic force to a coil attached to the piston.
- 24. The method of claim 21 wherein the coil and piston are attached via a common uniaxial carriage.
- 25. The method of claim 24 wherein the uniaxial carriage is supported on gas bearings and the gas piston is of gas bearing construction such that the carriage is completely supported laterally on a film of gas.
- 26. The method of claim 25 wherein the gas bearings and gas piston are completely contained within a gas tight housing and bearing feed pressure is supplied by a pressure line to the gas tight housing and bearing escape gas is scavenged and drawn off with a gas scavenging line from the housing such that the carriage, bearings and housing effect a gas tight isolator-actuator unit suitable for vacuum environment usage.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH
[0001] This invention was made with U.S. Government support under a second level subcontract to Contract No. F29601-97-C-0001 awarded by the Department of the Air Force. The U.S. Government has certain royalty-free rights in this invention.