Claims
- 1. A system for a bimorph actuator, the system comprising:
a first electrode; a second electrode; a first electrostrictive material having a first length and configured to change length in response to an applied electrical field, the first electrostrictive material being positioned between the first electrode and the second electrode; a third electrode; and a second electrostrictive material having a second length and configured to change length in response to an applied electrical field, the second electrostrictive material being positioned between the second electrode and the third electrode, the second electrostrictive material and the first electrostrictive material being attached to each other such that a differential change in the first length and the second length results in a lateral motion of the first electrostrictive material and the second electrostrictive material.
- 2. The system of claim 1, wherein the first electrostrictive material and the second electrostrictive material each include at least one sheet of electrostrictive material.
- 3. The system of claim 1, wherein the first electrode, the second electrode, and the third electrode each include at least one sheet of conductive material.
- 4. The system of claim 1, further comprising:
a first voltage source arranged to provide a voltage differential between the first electrode and the third electrode, the voltage differential causing lengths of the first electrostrictive material and the second electrostrictive material to change from the first length and the second length to a third length and a fourth length, respectively, that are shorter than the first length and the second length, respectively.
- 5. The system of claim 4, further comprising:
a second voltage source arranged to provide a variable voltage to the second electrode, the variable voltage causing length of the first electrostrictive material to change from the third length towards a fifth length that is shorter than the third length when the length of second electrostrictive material changes from the fourth length towards the second length, the variable voltage further causing the length of the first electrostrictive material to change from the third length toward the first length when the length of the second electrostrictive material changes from the fourth length towards a sixth length that is shorter than the fourth length.
- 6. The system of claim 5, wherein the second voltage source includes a biased AC voltage source, such that the lateral motion is periodic.
- 7. The system of claim 1, wherein the first electrode includes a first connection tab, the second electrode includes a second electrode tab, and the third electrode includes a third connection tab, the first, second, and third connection tabs being arranged to not overlap each other.
- 8. The system of claim 7, wherein the second connection tab is located intermediate the first connection tab and the third connection tab.
- 9. The system of claim 1, wherein the first electrostrictive material and the second electrostrictive material include one of grafted elastomers, ionic polymers, ceramics, relaxor ferroelectric-ferroelectric solid state solutions, lead zinc niobate-lead titanate, and electron irradiated copolymer polyvinylidene fluoride-trifluoroethyline.
- 10. The system of claim 9, wherein the relaxor ferroelectric-ferroelectric solid-state solutions include one of lead magnesium, PZN-PT electrostrictive crystals, PMN-PT electrostrictive crystals, and complex perovskite crystal analogs.
- 11. The system of claim 1, wherein the first electrostrictive material and the second electrostrictive material are attached to each other with an attachment including adhesive.
- 12. The system of claim 11, wherein the adhesive includes at least one sheet of adhesive film.
- 13. A system of electrodes for a bimorph actuator, the system comprising:
a first electrode sheet having a first electrode edge with a first connection tab; a second electrode sheet having a second electrode edge with a second connection tab, the second electrode edge being aligned with the first electrode edge; and a third electrode sheet positioned intermediate the first electrode sheet and the second electrode sheet, the third electrode sheet having a third electrode edge with a third connection tab, the third electrode edge being aligned with the first electrode edge.
- 14. The system of claim 13, wherein the first, second, and third connection tabs are arranged to not overlap each other.
- 15. The system of claim 13, wherein the second connection tab is located intermediate the first connection tab and the third connection tab.
- 16. A method for actuating electrostrictive materials, the method comprising:
providing a first electrode; providing a second electrode; providing a first electrostrictive material having a first length and configured to change length in response to an applied electrical field, the first electrostrictive material being positioned between the first electrode and the second electrode; providing a third electrode; providing a second electrostrictive material having a second length and configured to change length in response to an applied electrical field, the second electrostrictive material being positioned between the second electrode and the third electrode; attaching the second electrostrictive material and the first electrostrictive material to each other such that a differential change in the first length and the second length results in a lateral motion; and applying a first voltage arranged to provide a voltage differential between the first electrode and the third electrode, the voltage differential causing lengths of the first electrostrictive material and the second electrostrictive material to change from the first length and the second length to a third length and a fourth length, respectively, that are shorter than the first length and the second length, respectively.
- 17. The method of claim 16, further comprising:
applying a second voltage, arranged to provide a variable voltage to the second electrode, the variable voltage causing length of the first electrostrictive material to change from the third length towards a fifth length that is shorter than the third length when the length of second electrostrictive material changes from the fourth length towards the second length, the variable voltage further causing the length of the first electrostrictive material to change from the third length toward the first length when the length of the second electrostrictive material changes from the fourth length towards a sixth length that is shorter than the fourth length.
- 18. A system for a bimorph actuator, the system comprising:
a first electrode sheet having a first side and a second side and having an first electrode edge with a first connection tab, the first connection tab having a first connection edge and a second connection edge; a first electrostrictive sheet arranged on the first side of the first electrode sheet, the first electrostrictive sheet having a first length and configured to change length in response to an applied electrical field; a second electrostrictive sheet arranged on the second side of the first electrode sheet, the second electrostrictive sheet having a second length and configured to change length in response to an applied electrical field; a second electrode sheet having a second electrode edge with a second connection tab arranged so that the first electrostrictive sheet is located intermediate the second electrode sheet and the first side of the first electrode, the second electrode sheet being further arranged so the second electrode edge is aligned with the first electrode edge and the second connection tab is positioned near the first connection edge of the first connection tab; a third electrode sheet having a third electrode edge with a third connection tab arranged so that the second electrostrictive sheet is located intermediate the third electrode sheet and the second side of the first electrode, the third electrode sheet being further arranged that the third electrode edge is aligned with the first electrode edge, and the third connection tab is positioned near the second connection edge of the first connection tab; a dc voltage arranged to provide a voltage differential between the second electrode sheet and the third electrode sheet, the voltage differential causing lengths of the first electrostrictive material and the second electrostrictive material to change from the first length and the second length to a third length and a fourth length, respectively, that are shorter than the first length and the second length, respectively, a biased ac voltage arranged to provide a variable voltage to the second electrode, the variable voltage causing length of the first electrostrictive material to change from the third length towards a fifth length that is shorter than the third length when the length of second electrostrictive material changes from the fourth length towards the second length, the variable voltage further causing the length of the first electrostrictive material to change from the third length toward the first length when the length of the second electrostrictive material changes from the fourth length towards a sixth length that is shorter than the fourth length; and a first attachment including an adhesive attaching the first electrostrictive sheet and the side of the first electrode sheet, and a second attachment including between the second electrostrictive sheet and the second side of the first electrode, the first attachment and the second attachment arranged such that a differential change in the first length and the second length bends the first electrostrictive material and the second electrostrictive material.
- 19. A method for generating electrical power using electrostrictive materials, the method comprising:
positioning a first electrode intermediate a first electrostrictive material and a second electrostrictive material, the first electrostrictive material having a first length and configured to generate an electrical field in response to change in length, the second electrostrictive material having a second length and configured to generate an electrical field in response to change in length; positioning the first electrostrictive material, the first electrode, and the second electrostrictive material intermediate a second electrode and a third electrode; applying a dc voltage to the second electrode and the third electrode, the dc voltage arranged arranged to provide a voltage differential between the second electrode and the third electrode, the voltage differential causing lengths of the first electrostrictive material and the second electrostrictive material to change from the first length and the second length to a third length and a fourth length, respectively, that are shorter than the first length and the second length, respectively; attaching the first electrostrictive material and the second electrostrictive material, such that an externally-produced movement of the first electrostrictive material and the second electrostrictive material causes length of the first electrostrictive material to change from the third length towards a fifth length that is shorter than the third length when the length of second electrostrictive material changes from the fourth length towards the second length, the external movement further causing the length of the first electrostrictive material to change from the third length toward the first length when the length of the second electrostrictive material changes from the fourth length towards a sixth length that is shorter than the fourth length; and moving the first electrostrictive material and the second electrostrictive material, thereby generating a changing voltage differential between the first electrode and the second electrode and third electrode.
GOVERNMENT LICENSE RIGHTS
[0001] This invention was made with Government support under U.S. Government contract awarded by the Department of the Army, DADD-19-99-C-0023. The Government has certain rights in this invention.