Claims
- 1. A direct drive servovalve comprising:
a valve body, a valve spool having a longitudinal axis, a smart material element, and a mechanical lever having first and second ends wherein the lever is mounted to a pivot support means and the lever is positioned relative to the smart material element and valve spool such that expansive motion induced into the smart material element enforces motion on the first end of the mechanical lever such that the first end motion is amplified by the lever at the second end of the lever and the second end of the lever drives the end of the valve spool causing the valve spool to shift along its longitudinal axis a distance commensurate with the amplified motion of the second end of the lever.
- 2. The servovalve of claim 1 wherein the smart material element is comprised of a piezoelectric stack.
- 3. The servovalve of claim 1 wherein the smart material element is comprised of at least one element chosen from electrostrictive and magnetostrictive elements.
- 4. The servovalve of claim 1 wherein the smart material element is integrally supported by the valve body and the pivot support means is a pin mounted within the valve body.
- 5. The servovalve of claim 1 wherein the smart material element and the mechanical lever are mounted in a valve actuator body separate from the valve body.
- 6. The servovalve of claim 1 further comprising a sleeve surrounding the valve spool and nesting within the valve body with fluid passageways similar to the spool and valve body, a sleeve adjustment screw supported by the valve body and positioned so to allow longitudinal positioning of the sleeve relative to the valve spool, and a sleeve preload spring positioned between the valve body and one end of the sleeve for providing longitudinal constraining force on the sleeve.
- 7. The servovalve of claim 1 wherein the valve body and valve spool are of a design for effecting pressure modulation such that the servovalve effects a pressure control valve.
- 8. The servovalve of claim 1 further comprising at least one spool state variable sensor for providing spool state variable data for spool feedback control.
- 9. A two-stage servovalve suitable for controlling large flows comprising the servovalve of claim 1 and a large flow power control valve wherein the servovalve of claim 1 is attached to the large power control valve such that fluid flow from the servovalve of claim 1 controls the spool position of the large power control valve.
- 10. A system for effecting high bandwidth motion control comprising:
at least one servovalve of claim 1, a hydraulic actuator, and a computer controlled variable voltage source, wherein the servovalve regulates the fluid flow to the hydraulic actuator and the computer controlled variable voltage source provides voltage command input to the servovalve.
- 11. The system of claim 10 further comprising at least one spool state variable sensor and a local electronic processor for providing servovalve localized feedback control.
- 12. A method for effecting high bandwidth control of a servovalve having a valve spool comprising the steps of:
a) inducing a shape change into a smart material element, b) mechanically amplifying a component of motion of the shape change of the smart material element, c) applying the mechanically amplified component of motion directly to the end of the valve spool such that the spool is caused to shift to a different valve spool position, and d) varying the induced shape change in the smart material in a controlled manner such that the valve spool is forced to shift between valve positions in a commensurate manner.
- 13. The method of claim 12 wherein the smart material element is comprised of a piezoelectric stack and the step of inducing a shape change is comprised of applying an electric voltage to the piezoelectric stack such that an expansion of the piezoelectric stack is effected.
- 14. The method of claim 12 wherein the step of mechanically amplifying a component of motion is comprised of applying the expansion of the smart material element to a first end of a mechanical lever such that a second end of the lever is forced to move in amplified proportion to the expansion of the smart material element.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH
[0001] This invention was made with U.S. Government support under SBIR Contract No. F-08630-00-C-0058 awarded by the Department of the Air Force. The U.S. Government has certain royalty-free rights in this invention.