Claims
- 1. A system for a compound actuator, the system comprising:
a first electrode layer including a first electrode section and a second electrode section; a second electrode layer including a third electrode section, the third electrode section being arranged to overlap the first and second sections; a first electrostrictive material configured to change length in response to an applied electrical field, the first electrostrictive material being positioned between the first electrode layer and the second electrode layer, the first electrostrictive material having a first length adjoining the first electrode section and a second length adjoining the second electrode section; a third electrode layer including a fourth electrode section and a fifth electrode section, the fourth and fifth electrode sections being arranged to overlap the first and second electrode sections, respectively; and a second electrostrictive material configured to change length in response to an applied electrical field, the second electrostrictive material being positioned between the second electrode layer and the third electrode layer, the second electrostrictive material having a third length adjoining the fourth electrode section and a fourth length adjoining the fifth electrode section, the second electrostrictive material and the first electrostrictive material being attached to each other such that at least one differential change in the first length and the third length, and the second length and the fourth length, respectively, 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 layer, the second electrode layer, and the third electrode layer 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 section and the fourth electrode section, and between the second electrode section and the fifth electrode section, the voltage differential causing the first electrostrictive material and the second electrostrictive material to change from the first length, the second length, the third length and the fourth length to a fifth length, a sixth length, a seventh length, and an eighth length, respectively, that are shorter than the first length, the second length, the third length, and the fourth length, respectively.
- 5. The system of claim 4, further comprising:
a second voltage source arranged to provide a variable voltage to the second electrode layer, the variable voltage causing the first electrostrictive material to change from the fifth length towards a ninth length that is shorter than the fifth length and the sixth length towards a tenth length that is longer than the sixth length when the second electrostrictive material changes from the seventh length towards an eleventh length that is longer than the seventh length and the eighth length towards a twelfth length that is shorter than the eighth length, the variable voltage further causing the first electrostrictive material to change from the fifth length towards a thirteenth length that is longer than the fifth length and the sixth length towards a fourteenth length that is longer than the sixth length when the second electrostrictive material changes from the seventh length towards a fifteenth length that is shorter than the seventh length and the eighth length towards a sixteenth length that is longer than the eighth 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 6, wherein the lateral motion is resonant.
- 8. The system of claim 1, wherein the first electrode section includes a first connection tab, the second electrode section includes a second connection tab, the third electrode section includes a third connection tab, the fourth electrode section includes a fourth connection tab, and the fifth electrode section includes a fifth connection tab, the first, third, and fourth connection tabs being arranged to not overlap each other and the second, third, and fifth connection tabs being arranged to not overlap each other.
- 9. The system of claim 1, wherein the first electrode section includes a first connection tab, the second electrode section includes a second connection tab, the third electrode section includes a third connection tab and a fourth connection tab, the fourth electrode section includes a fifth connection tab, the fifth electrode section includes a sixth connection tab, the first, third, and fifth connection tabs being arranged to not overlap each other, and the second, fourth, and sixth connection tabs being arranged to not overlap each other.
- 10. The system of claim 9, wherein the third connection tab is located intermediate the first connection tab and the fourth connection tab, and the sixth connection tab is located intermediate the second connection tab and the fifth connection tab.
- 11. 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.
- 12. The system of claim 11, 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.
- 13. 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.
- 14. The system of claim 13, wherein the adhesive includes at least one sheet of adhesive film.
- 15. The system of claim 1, wherein the first electrode section has a first electrode length, the second electrode section has a second electrode length, the third electrode section has a third electrode length, the fourth electrode section has a fourth electrode length, and the fifth electrode section has a fifth electrode length, the second, fourth and fifth electrode lengths being equalized toward the first electrode length, and third electrode length being around two times the first electrode length.
- 16. The system of claim 15, wherein the lateral motion includes an s-curve.
- 17. A system of electrodes for a compound actuator, the system comprising:
a first electrode sheet including a first electrode section having a first length and a first end and a second end, a second electrode section having a second length and a third end and a fourth end, the first electrode section and the second electrode section being arranged end-to-end, the third end being adjacent to the second end, and the second length being equalized toward the first length; a second electrode sheet including a third electrode section having a fourth length and a fifth end and a sixth end, a fourth electrode section having a fourth length and a seventh end and an eighth end, the third electrode section and the fourth electrode section being arranged end-to-end, the seventh end being adjacent to the sixth end, the third and fourth lengths each being equalized toward the first length, the fifth end being aligned with the first end, and the eighth end being aligned with the fourth end; and a third electrode sheet positioned intermediate the first electrode sheet and the second electrode sheet, the third electrode sheet including a fifth electrode section having a fifth length and a ninth end and a tenth end, the fifth length being around two times the first length, the ninth end is aligned with the first end, and the tenth end is aligned with the sixth end.
- 18. The system of claim 17, wherein the first electrode section includes a first connection, the second electrode section includes a second connection, the third electrode section includes a third connection, the fourth electrode section includes a fourth connection, and the fifth electrode section includes a fifth connection and a sixth connection.
- 19. The system of claim 18, wherein the first, second, third, fourth, fifth, and sixth, connections are arranged to not overlap each other.
- 20. The system of claim 17, wherein the first electrode section includes a first connection on the first end, the second electrode section includes a second connection on the fourth end, the third electrode section includes a third connection on the fifth end, the fourth electrode section includes a fourth connection on the eighth end, and the fifth electrode section includes a fifth connection on the ninth end and a sixth connection on the tenth end.
- 21. The system of claim 20, wherein the first, fifth, and third connections are arranged to not overlap each other and the second, sixth, and eighth connections are arranged to not overlap each other.
- 22. The system of claim 21, wherein the fifth connection is located intermediate the first connection and the third connection, and wherein the sixth connection is located intermediate the second connection and the fourth connection.
- 23. The system of claim 21, wherein the first electrode sheet and the second electrode sheet are arranged as rotations of each other.
- 24. The system of claim 21, wherein the first electrode sheet and the second electrode sheet are arranged as mirror images of each other.
- 25. A system for a recurve actuator, the system comprising:
a first electrode layer including a first electrode section, a second electrode section, and a third electrode section, the second electrode section being intermediate the first and third electrode sections; a second electrode layer including a fourth electrode section, the fourth electrode section being arranged to overlap the first, second, and third electrode sections; a first electrostrictive material configured to change length in response to an applied electrical field, the first electrostrictive material being positioned between the first electrode layer and the second electrode layer, the first electrostrictive material having a first length adjoining the first electrode section, a second length adjoining the second electrode section, and a third length adjoining the third electrode section; a third electrode layer including a fifth electrode section, a sixth electrode section, and a seventh electrode section, the sixth electrode section being intermediate the fifth and seventh electrode sections, the fifth, sixth, and seventh electrode sections being arranged to overlap the first, second, and third electrode sections, respectively; and a second electrostrictive material configured to change length in response to an applied electrical field, the second electrostrictive material being positioned between the second electrode layer and the third electrode layer, the second electrostrictive material having a fourth length adjoining the fifth electrode section, a fifth length adjoining the sixth electrode section, and a sixth length adjoining the seventh electrode section, the second electrostrictive material and the first electrostrictive material being attached to each other such that at least one differential change in the first length and the fourth length, the second length and the fifth length, and the third length and the sixth length, results in a lateral motion of the first electrostrictive material and the second electrostrictive material.
- 26. The system of claim 25, wherein the first electrostrictive material and the second electrostrictive material each include at least one sheet of electrostrictive material.
- 27. The system of claim 25, wherein the first electrode layer, the second electrode layer, and the third electrode layer each include at least one sheet of conductive material.
- 28. The system of claim 25, further comprising:
a first voltage source arranged to provide a voltage differential between the first electrode section and the fourth electrode section, the second electrode section and the fifth electrode section, and the third electrode section and the sixth electrode section, the voltage differential causing the first electrostrictive material and the second electrostrictive material to change from the first length, the second length, the third length, the fourth length, the fifth length, and the sixth length to a seventh length, an eighth length, a ninth length, a tenth length, an eleventh length, and a twelve length, respectively, that are shorter than the first length, the second length, the third length, the fourth length, the fifth length, and the sixth length, respectively.
- 29. The system of claim 28, further comprising:
a second voltage source arranged to provide a variable voltage to the second electrode layer, the variable voltage causing the first electrostrictive material to change from the seventh length towards a thirteenth length that is shorter than the seventh length, the eighth length towards a fourteenth length that is longer than the eighth length, and the ninth length towards a fifteenth length that is shorter than the ninth length when the second electrostrictive material changes from the tenth length towards a sixteenth length that is longer than the tenth length, the eleventh length towards a seventeenth length that is shorter than the eleventh length, and the twelfth length towards an eighteenth length that is longer than the twelfth length, the variable voltage further causing the first electrostrictive material to change from the seventh length towards a nineteenth length that is longer than the seventh length, the eighth length towards a twentieth length that is shorter than the eighth length, and the ninth length towards a twenty-first length that is longer than the ninth length when the second electrostrictive material changes from the tenth length towards a twenty-second length that is shorter than the tenth length, the eleventh length towards a twenty-third length that is longer than the eleventh length, and the twelfth length towards a twenty-fourth length that is shorter than the twelfth length.
- 30. The system of claim 30, wherein the second voltage source includes a biased AC voltage source, such that the lateral motion is periodic.
- 31. The system of claim 31, wherein the lateral motion is resonant.
- 32. The system of claim 25, wherein the first electrode section includes a first connection tab, the second electrode section includes a first connection point, the third electrode section includes a second connection tab, the fourth electrode section includes a third connection tab, the fifth electrode section includes a fourth connection tab, the sixth electrode section includes a second connection point, and the seventh electrode section includes a fifth electrode tab, the first, third, and fourth connection tabs being arranged to not overlap each other, the first and second connection points being arranged to not overlap each other, and the second, third, and fifth connection tabs being arranged to not overlap each other.
- 33. The system of claim 25, wherein the second electrode layer further includes an eighth electrode section, the first electrode section includes a first connection tab, the second electrode section includes a first connection point, the third electrode section includes a second connection tab, the fourth electrode section includes a third connection tab, the fifth electrode section includes a fourth connection tab, the sixth electrode section includes a second connection point, the seventh electrode section includes a fifth electrode tab, and the eighth electrode section includes a sixth electrode tab, the first, third, and fourth connection tabs being arranged to not overlap each other, the first and second connection points and the fourth and eighth electrode sections being arranged to not overlap each other, and the second, sixth, and fifth connection tabs being arranged to not overlap each other.
- 34. The system of claim 33, wherein the third connection tab is located intermediate the first connection tab and the fourth connection tab, and the sixth connection tab is located intermediate the second connection tab and the fifth connection tab.
- 35. The system of claim 25, 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.
- 36. The system of claim 35, 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.
- 37. The system of claim 25, wherein the first electrostrictive material and the second electrostrictive material are attached to each other with an attachment including adhesive.
- 38. The system of claim 37, wherein the adhesive includes at least one sheet of adhesive film.
- 39. The system of claim 25, wherein the first electrode section has a first electrode length, the second electrode section has a second electrode length, the third electrode section has a third electrode length, the fourth electrode section has a fourth electrode length, the fifth electrode section has a fifth electrode length, the sixth electrode section has a sixth electrode length, and the seventh electrode section has a seventh electrode length, the third, fifth and seventh electrode lengths are equalized toward the first electrode length, the fourth electrode length is around four times the first electrode length, and the second and sixth electrode lengths are around two times the first electrode length.
- 40. The system of claim 39 wherein the lateral motion includes a recurve.
- 41. A system of electrodes for a recurve actuator, the system comprising:
a first electrode sheet including a first electrode section having a first length and a first end and a second end, a second electrode section having a second length and a third end, a fourth end, and a first middle, and a third electrode section having a third length and a fifth end and a sixth end, the first electrode section, the second electrode section and the third electrode section being arranged end-to-end, the second electrode section being intermediate the first electrode section and the third electrode section, the third end being adjacent to the second end and the fifth end being adjacent to the fourth end, the first length being equalized toward the third length and the second length being around two times the first length; a second electrode sheet including a fourth electrode section having a fourth length and a seventh end and an eighth end, a fifth electrode section having a fifth length and a ninth end, a tenth end, and a second middle, and a sixth electrode section having a sixth length and an eleventh end and a twelfth end, the fourth electrode section, the fifth electrode section and the sixth electrode section being arranged end-to-end, the fifth electrode section being intermediate the fourth electrode section and the sixth electrode section, the ninth end being adjacent to the eighth end and the eleventh end being adjacent to the tenth end, the fourth length and the sixth length each being equalized toward the first length, the fifth length being around two times the first length, and the seventh end being aligned with the first end and the twelfth end being aligned with the sixth end; and a third electrode sheet positioned intermediate the first electrode sheet and the second electrode sheet, the third electrode sheet including a seventh electrode section having a seventh length and a thirteenth end and a fourteenth end and an eighth electrode section having an eighth length and a fifteenth end and a sixteenth end, the seventh electrode section and the eighth electrode section being arranged end-to-end, the fourteenth end being adjacent to the fifteenth end, the seventh length and the eighth length each being around two times the first length, and the thirteenth end is aligned with the first end and the sixteenth end is aligned with the sixth end.
- 42. The system of claim 41, wherein the first electrode section includes a first connection, the second electrode section includes a second connection, the third electrode section includes a third connection, the fourth electrode section includes a fourth connection, the fifth electrode section includes a fifth connection, the sixth electrode section includes a sixth connection, the seventh electrode section includes a seventh connection, and the eighth electrode section includes an eighth connection.
- 43. The system of claim 42, wherein the first, second, third, fourth, fifth, sixth, seventh, and eighth connections are arranged to not overlap each other.
- 44. The system of claim 41, wherein the first electrode section includes a first connection on the first end, the second electrode section includes a second connection on the first middle, the third electrode section includes a third connection on the sixth end, the fourth electrode section includes a fourth connection on the seventh end, the fifth electrode section includes a fifth connection on the second middle, the sixth electrode section includes a sixth connection on the twelfth end, the seventh electrode section includes a seventh connection on the thirteenth end, and the eighth electrode section includes a connection on the sixteenth end.
- 45. The system of claim 44, wherein the first, seventh, and fourth connections are arranged to not overlap each other, the third, eighth, and sixth connections are arranged to not overlap each other, and the second and fifth connections are arranged to not overlap each other.
- 46. The system of claim 45, wherein the seventh connection is located intermediate the first connection and the fourth connection, and wherein the eighth connection is located intermediate the third connection and the sixth connection.
- 47. The system of claim 44, wherein the second connection and the fifth connection are arranged to not overlap the seventh electrode section or the eighth electrode section.
- 48. The system of claim 45, wherein the first electrode sheet and the second electrode sheet are arranged as mirror images of each other.
- 49. The system of claim 45, wherein the first electrode sheet and the second electrode sheet are arranged as rotations of each other.
- 50. A system for a multi-layer compound actuator, the system comprising:
at least two first layers of electrostrictive material configured to change length in response to an applied electrical field, each first layer being divided into at least two adjacent sections including a section with a first length and an adjoining section with a second length, each first layer being arranged with a first electrode configuration to cause the first length to become shorter when the second length becomes longer and further cause the first length to become longer when the second length becomes shorter, the at least two first layers being arranged adjacent to each other forming a first stack, the at least two first layers being arranged with their first and second lengths respectively aligned and overlapping; and at least two second layers of electrostrictive material configured to change length in response to an applied electrical field, each second layer being divided into at least two adjacent sections including a second section with a third length equal to the first length and an adjoining second section with a fourth length equal to the second length, each second layer being arranged with a second electrode configuration to cause the third length to become shorter when the first length becomes longer and the fourth length to become longer when the first length becomes longer and further cause the third length to become longer when the first length becomes shorter and the fourth length to become shorter when the first length becomes shorter, the at least two second layers being arranged adjacent to each other forming a second stack, the at least two second layers being arranged with their third and fourth lengths respectively being aligned and overlapping, the second stack being arranged adjacent to the first stack with the first and second lengths being aligned with and overlapping the third and fourth lengths respectively, and the first stack and the second stack being attached to each other such that a differential change in the first length in relation to the third length and the second length in relation to the fourth length results in a lateral motion of the first stack and the second stack including an s-curve.
- 51. The system of claim 50, wherein the at least two first electrostrictive layers and the at least two second electrostrictive layers each include at least one sheet of electrostrictive material.
- 52. The system of claim 50, wherein the first electrode configuration and the second electrode configuration each include sheets of conductive material.
- 53. The system of claim 50, further comprising:
a first voltage source arranged to provide an electric voltage differential in the first electrode configuration and in the second electrode configuration, the voltage differential causing the first, second, third, and fourth lengths to become shorter.
- 54. The system of claim 53, further comprising:
a second voltage source arranged to provide a variable voltage to first electrode configuration and to the second electrode configuration, the variable voltage further causing the first length and the fourth length to become shorter when the second length and the fourth length become longer, and further cause the first length and the fourth length to become longer when the second length and the third length become shorter.
- 55. The system of claim 54, wherein the second voltage source includes a biased AC voltage source, such that the lateral motion is periodic.
- 56. The system of claim 55, wherein the lateral motion is resonant.
- 57. The system of claim 50, 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.
- 58. The system of claim 57, 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.
- 59. The system of claim 50, wherein the first stack and the second stack are attached to each other with an attachment including adhesive.
- 60. The system of claim 59, wherein the adhesive includes at least one sheet of adhesive film.
- 61. The system of claim 50, wherein the at least two first layers are attached to each other with an attachment including at least one sheet of adhesive film, and wherein the at least two second layers are attached to each other with an attachment including at least one sheet of adhesive film.
- 62. A system for a multi-layer recurve actuator, the system comprising:
at least two first layers of electrostrictive material configured to change length in response to an applied electrical field, each first layer having a first length divided into quarters with a first quarter length, a second quarter length, a third quarter length and a fourth quarter length, each first layer arranged with a first electrode configuration to cause the first quarter length and the fourth quarter length to become shorter when the second quarter length and the third quarter length become longer and further cause the first quarter length and the fourth quarter length to become longer when the second quarter length and the third quarter length become shorter, the at least two first layers being arranged with their first lengths aligned and their first, second, third and fourth quarter lengths respectively aligned, and the at least two first layers being arranged adjacent to each other forming a first stack; and at least two second layers of electrostrictive material configured to change length in response to an applied electrical field, each second layer having a second length equalized to the first length divided into quarters with a fifth quarter length, a sixth quarter length, a seventh quarter length and an eighth quarter length, each second layer being arranged with a second electrode configuration to cause the fifth quarter length and the eighth quarter length to become shorter when the first quarter length and the third quarter length become longer and the sixth quarter length and the seventh quarter length to become longer when the second quarter length and third quarter length become shorter and further cause the fifth quarter length and the eighth quarter length to become longer when the first quarter length and the fourth quarter length become shorter and the sixth quarter length and the seventh quarter length to become shorter when the second quarter length and third quarter length become longer, the at least two second layers being arranged with their second lengths aligned with the first lengths, and their fifth, sixth, seventh and eighth quarter lengths respectively aligned, and the at least two second layers being arranged adjacent to each other forming a second stack, the second stack being arranged adjacent to the first stack with the first, second, third and fourth quarter lengths aligned with the fifth, sixth, seventh, eighth quarter lengths, respectively, and the first stack and the second stack being attached to each other such that a differential change in the first quarter length in relation to the fifth quarter length, the second quarter length in relation to the fifth quarter length, the third quarter length in relation to the seventh quarter length, and the fourth quarter length in relation to the eighth quarter length results in a lateral motion of the first stack and the second stack including a recurve.
- 63. The system of claim 62, wherein the at least two first electrostrictive layers and the at least two second electrostrictive layers each include at least one sheet of electrostrictive material.
- 64. The system of claim 62, wherein the first electrode configuration and the second electrode configuration each include at least two sheets of conductive material.
- 65. The system of claim 62, further comprising:
a first voltage source arranged to provide an electric voltage differential in the first electrode configuration and the second electrode configuration, the voltage differential causing the first, second, third, fourth, fifth, sixth, seventh, and eighth quarter lengths to become shorter.
- 66. The system of claim 65, further comprising:
a second voltage source arranged to provide a variable voltage to the first electrode configuration and the second electrode configuration, the variable voltage further causing the first quarter length and the fourth quarter length to become shorter when the second quarter length and the third quarter length become longer, the first quarter length and the fourth quarter length to become longer when the second quarter length and the third quarter length become shorter, the fifth quarter length and the eighth quarter length to become shorter when the first quarter length and the fourth quarter length become longer, and the sixth quarter length and the seventh quarter length to become longer when the second quarter length and third quarter length become shorter, and further causing the fifth quarter length and the eighth quarter length to become longer when the first quarter length and the fourth quarter length become shorter and the sixth quarter length and the seventh quarter length to become shorter when the second quarter length and third quarter length become longer.
- 67. The system of claim 66, wherein the second voltage source includes a biased AC voltage source, such that the lateral motion is periodic.
- 68. The system of claim 67, wherein the lateral motion is resonant.
- 69. The system of claim 62, 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.
- 70. The system of claim 69, 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.
- 71. The system of claim 62, wherein the first stack and the second stack are attached to each other with an attachment including adhesive.
- 72. The system of claim 71, wherein the adhesive includes at least one sheet of adhesive film.
- 73. The system of claim 62, wherein the at least two first layers are attached to each other with an attachment including at least one sheet of adhesive film, and wherein the at least two second layers are attached to each other with an attachment including at least one sheet of adhesive film.
- 74. An electrode system for a layer for a multi-layer recurve actuator, the system comprising:
a first electrode sheet including a first electrode section having a first length, and a first end and a second end, a first side and a second side and a first centerline centered between the first side and the second side, a second electrode section having a second length, a third end and a fourth end, a third side with a first center midway between the third end and fourth end, and a fourth side with a second center midway between the third end and the fourth end, and a second centerline centered between the third side and fourth side, and a third electrode section having a third length and a fifth end and a sixth end and a fifth side and a sixth side and a third centerline centered between the fifth side and the sixth side, the first electrode section, the second electrode section and the third electrode section being arranged end-to-end with their first, second, and third centerlines respectively co-linear, the second electrode section being intermediate between the first electrode section and the third electrode section, the third end being adjacent the second end, the fifth end being adjacent the fourth end, the first side and the third side and the fifth side being linearly aligned, the second side and the fourth side and the sixth side being linearly aligned, the first length being equalized toward the third length and the second length being around two times the first length; and a second electrode sheet including a fourth electrode section having a fourth length, a seventh side, an eighth side, a fourth centerline centered between the seventh side and the eighth side, a seventh end having a third center at an intersection of the seventh end and the fourth centerline, and an eighth end, and a fifth electrode section having an fifth length, a ninth side, a tenth side, a fifth centerline centered between the ninth side and the tenth side, a ninth end, and a tenth end having a fourth center at the intersection of the tenth end and the fifth centerline, the fourth electrode section and the fifth electrode section being linearly arranged end-to-end, the eighth end being adjacent the ninth end, the seventh side aligned with the ninth side, and the eighth side aligned with the tenth side, the fourth length and the fifth length each being around two times the first length, wherein the first electrode sheet and the second electrode sheet are arranged with seventh end aligned with the first end and the tenth end is aligned with the sixth end.
- 75. The system of claim 74, wherein the first electrode section includes a first connection, the second electrode section includes a second connection, the third electrode section includes a third connection, the fourth electrode section includes a fourth connection, and the fifth electrode section includes a fifth connection.
- 76. The system of claim 75, wherein the first, second, third, fourth, and fifth connections are arranged to not overlap each other.
- 77. The system of claim 74, wherein the fourth and the fifth electrode sections are connected.
- 78. The system of claim 74, wherein the first electrode section includes a first connection on the first end, the second electrode section includes a second connection on a midsection line between the first center and the second center, the third electrode section includes a third connection on the sixth end, the fourth electrode section includes a fourth connection on the seventh end, the fifth electrode section includes a fifth connection on the tenth end.
- 79. The system of claim 78, wherein the first connection does not overlap the fourth connection, and the third connection does not overlap the fifth connection.
- 80. The system of claim 78, wherein the first connection is between the first centerline and the first side and the third connection is between the third centerline and the second side.
- 81. The system of claim 78, wherein the second connection is between the first centerline and the first side, the second connection does not overlap the fourth electrode section, and the second electrode connection does not overlap the fifth electrode section.
- 82. The system of claim 81, wherein the second electrode section defines a notch in the fourth side at the second center, the notch being arranged to extend from the fourth side along the midsection line between the second center to the first center to a point on that midsection line between the second centerline and the first center.
- 83. The system of claim 82 where the notch has a first width, and the second electrode sheet further defines a first gap between the fourth electrode section and the fifth electrode section, the first gap having a second width equalized toward the first width, and the notch overlaps the first gap.
- 84. The system of claim 81 where the second electrode sheet defines a second gap between the fourth electrode section and the fifth electrode section, and the second connection overlaps the second gap.
- 85. A system for a recurve array, the system comprising:
a first recurve actuator with a first end and a second end and a first center intermediate the first end and the second end; a second recurve actuator with a third end and a fourth end and a second center intermediate the third and fourth ends, the third and fourth ends being attached to the first and second ends, respectively; and a voltage system arranged to drive the first recurve actuator and the second recurve actuator such that the first center and the second center are deflectable toward and away from each other.
- 86. The system of claim 85, wherein the third end and the fourth ends are attached to the first and the second ends, respectively, with an attachment including a spacer.
- 87. The system of claim 85, wherein the voltage system includes a voltage source arranged to provide a variable voltage causing the first center to deflect towards the second center when the second center deflects towards the first center, and further causing the first center to deflect away from the first second center when the second center deflects away from the first center.
- 88. The system of claim 87, wherein the voltage source includes a biased AC voltage source, such that the deflection of the first center and the second center is periodic.
- 89. The system of claim 88, wherein the deflection of the first center and the second center is resonant.
- 90. The system of claim 85 further comprising:
a base connected to the second center, the base being arranged to hold the second center; and a linkage, attached to the first center, the linkage arranged to connect the first center to a device to be deflected.
- 91. A method for actuating a compound electrostrictive actuator, the method comprising:
providing a first electrode sheet; providing a second electrode sheet; providing a first electrostrictive material having a first section with a first length and a second section with a second length, the first electrostrictive material being configured to change length in response to an applied electrical field, the first electrostrictive material being positioned between the first electrode sheet and the second electrode sheet; providing a third electrode sheet; providing a second electrostrictive material having a third section with a third length and a fourth section with a fourth length, the second electrostrictive material being 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 third length and the second length and fourth length, respectively, will result in a lateral motion; and applying a first voltage to provide a voltage differential between the first 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, second length, third length, and fourth length, to a fifth length, sixth length, a seventh length, and eighth length, respectively, that are shorter than the first length, second length, third length, and fourth length, respectively.
- 92. The method of claim 91, further comprising:
applying a second voltage to provide a variable voltage to the second electrode sheet, the variable voltage causing shortening of the fifth length towards a ninth length that is shorter than the fifth length and lengthening of the sixth length towards a tenth length that is longer than the sixth length when causing lengthening of the seventh length towards an eleventh length that is longer than the seventh length and shortening of the eighth length towards a twelfth length that is shorter than the eighth length, the variable voltage further causing lengthening of the fifth length towards a thirteenth length that is longer than the fifth length and shortening of the sixth length towards a fourteenth length shorter than the sixth length when causing shortening of the seventh length towards a fifteenth length that is shorter than the seventh length and lengthening of the eighth length towards a sixteenth length that is longer than the eighth length.
- 93. The method of claim 92 further comprising:
deflecting the first electrostrictive layer and the second electrostrictive layer into an s-curve.
- 94. The method of claim 92 further comprising:
reversing the variable voltage periodically causing periodic deflection of the first electrostrictive layer and the second electrostrictive layer between an s-curve and a reverse s-curve.
- 95. A method for actuating an electrostrictive recurve, the method comprising:
providing a first electrode sheet; providing a second electrode sheet; providing a first electrostrictive material having a first section with a first length, a second section with a second length, and a third section with a third length, the first electrostrictive material being configured to change length in response to an applied electrical field, the first electrostrictive material being positioned between the first electrode sheet and the second electrode sheet; providing a third electrode sheet; providing a second electrostrictive material having a third section with a third length, a fourth section with a fourth length, and a fifth section with a fifth length, the second electrostrictive material being 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 third length, the second length and fourth length, and the third length and fourth length, respectively, results in a lateral motion; and applying a first voltage to provide a voltage differential between the first 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, second length, third length, fourth length, fifth length, and sixth length to a seventh length, eighth length, ninth length, tenth length, eleventh length, and twelfth length, respectively, that are shorter than the first length, second length, third length, fourth length, fifth length, and sixth length, respectively.
- 96. The method of claim 95, further comprising:
applying a second voltage to provide a variable voltage to the second electrode sheet, the variable voltage causing shortening of the seventh length towards a thirteenth length that is shorter than the seventh length, lengthening of the eighth length towards a fourteenth length that is longer than the eighth length, and shortening of the ninth length towards a fifteenth length that is shorter than the ninth length when causing lengthening of the tenth length towards a sixteenth length that is longer than the tenth length, shortening of the eleventh length towards a seventeenth length that is shorter than the eleventh length, and lengthening of the twelfth length towards an eighteenth length that is longer than the twelfth length, the variable voltage further causing lengthening of the seventh length towards a nineteenth length that is longer than the seventh length, shortening of the eighth length towards a twentieth length that is shorter than the eighth length, and lengthening of the ninth length towards a twenty-first length that is longer than the ninth length when causing shortening of the tenth length towards a twenty-second length that is shorter than the tenth length, lengthening of the eleventh length towards a twenty-third length that is longer than the eleventh length, and shortening of the twelfth length towards a twenty-fourth length that is shorter than the twelfth length.
- 97. The method of claim 96 further comprising:
deflecting the first electrostrictive layer and the second electrostrictive layer into a recurve.
- 98. The method of claim 96 further comprising:
reversing the variable voltage, periodically deflecting the first electrostrictive layer and the second electrostrictive layer between a recurve and a reverse recurve.
- 99. The method of claim 98 further comprising:
resonating the reversing of the variable voltage thereby amplifying the periodic deflecting of the first electrostrictive layer and the second electrostrictive layer.
- 100. A method for actuating a recurve array, the method comprising:
providing at least two recurve actuators, each with a first end, a second end, and a center; connecting the first ends of each of the at least two recurve actuators together and connecting and the second ends of the at least two recurve actuators; and deflecting the centers of the first and second recurve actuators away from each other and deflecting the centers of the first and second recurve actuators towards each other.
- 101. A method for actuating a multi-layer compound electrostrictive actuator, the method comprising:
providing at least two first electrostrictive layers having a first section with a first length and a second section with a second length, the at least two first electrostrictive layers being configured with at least one electrode sheet to change length in response to an applied electrical field; providing at least two second electrostrictive layers having a third section with a third length and a fourth section with a fourth length, the at least two second electrostrictive layers being configured with at least one electrode sheet to change length in response to an applied electrical field; attaching the second electrostrictive layers and the first electrostrictive layers to each other such that a differential change in the first length and the third length, the second length and fourth length, respectively, results in a lateral motion; and driving the electrode sheets with a variable voltage source, the variable voltage causing shortening of the first length towards a fifth length that is shorter than the first length and lengthening of the second length towards a sixth length that is longer than the second length when causing lengthening of the third length towards an seventh length that is longer than the third length and shortening of the fourth length towards an eighth length that is shorter than the fourth length, the variable voltage further causing lengthening of the first length towards a ninth length that is longer than the first length and shortening of the second length towards a tenth length shorter than the second length when causing shortening of the third length towards an eleventh length that is shorter than the third length and lengthening of the fourth length towards a twelfth length that is longer than the fourth length.
- 102. The method of claim 101 further comprising:
deflecting the first electrostrictive layers and the second electrostrictive layers into an s-curve by varying the variable voltage.
- 103. The method of claim 102 further comprising:
reversing the variable voltage periodically causing periodic deflection of the first electrostrictive layers and the second electrostrictive layers between an s-curve and a reverse s-curve.
- 104. The method of claim 101 wherein providing the first electrostrictive layers and the second electrostrictive layers includes providing a base element including two electrode sheets and a sheet of electrostrictive material intermediate the two electrode sheets for each first electrostrictive layer and each second electrostrictive layer.
- 105. The method of claim 104 wherein providing the base element includes rotating the base elements such that attaching the first electrostrictive layers and second electrostrictive layers includes preventing a differing charge from occurring on electrode sheets on adjacent electrostrictive layers and second electrostrictive layers.
- 106. A system for a multi-layer recurve array, the system comprising:
a first multi-layer recurve actuator including at least four layers of electrostrictive material, the first multi-layer recurve actuator having a first end and a second end and a first center intermediate the first end and the second end, a second multi-layer recurve actuator, including at least four layers of electrostrictive material, the second multi-layer recurve actuator having a third end and a fourth end and a second center intermediate the third and fourth ends, the third and fourth ends being attached with an attachment including a spacer to the first and second ends, respectively; and a voltage system arranged to drive the first multi-layer recurve actuator and the second multi-layer recurve actuator such that the first center and the second center are deflectable toward and away from each other.
- 107. The system of claim 106, wherein the voltage system includes a voltage source to provide a variable voltage causing the first center to deflect towards the second center when the second center deflects towards the first center, and further causing the first center to deflect away from the first second center when the second center deflects away from the first center.
- 108. The system of claim 107, wherein voltage source includes a biased AC voltage source, such that the deflection of the first center and the second center is periodic.
- 109. The system of claim 108, wherein the deflection of the first center and the second center is resonant.
- 110. The system of claim 106 further comprising:
a base connected to the second center, the base being arranged to hold the second center; and a linkage attached to the first center, the linkage being arranged to connect the first center to a device to be deflected.
- 111. A system for a recurve array driven synthetic jet, the system comprising:
a first recurve actuator with a first end and a second end and a first center intermediate the first end and the second end; a second recurve actuator with a third end and a fourth end and a second center intermediate the third and fourth ends, the third and fourth ends being attached with an attachment including a spacer to the first and second ends, respectively; a voltage system including a biased AC voltage source arranged to cause the first center to deflect towards the second center when the second center deflects towards the first center, the biased AC voltage source being arranged to further cause the first center to deflect away from the first second center when the second center deflects away from the first center, such that the deflection of the first center and the second center is periodic; a base connected to the second center, the base being arranged to hold the second center; and a diaphragm attached to the first center, the diaphragm being arranged to move air into and out of a gap in a surface.
- 112. A method for generating a synthetic jet a recurve actuator array, the method comprising:
providing at least two recurve actuators each with a first end, a second end and a center; connecting the first ends of each of the at least two recurve actuators together and connecting the second ends of the at least two recurve actuators, respectively; anchoring one of the at least two recurve actuators to a base; linking another of the at least two recurve actuators to a diaphragm; deflecting the centers of the at least two actuators away from each other and deflecting the centers of the at least two recurve actuators towards each other; and driving the diaphragm, thereby forcing air in and out of an opening.
RELATED APPLICATION
[0001] This application is a continuation-in-part of the patent application Ser. No. 10/286,097 filed on Oct. 31, 2002, and entitled “Electrical System for Electrostrictive Bimorph Actuator.”
GOVERNMENT LICENSE RIGHTS
[0002] 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.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10286097 |
Oct 2002 |
US |
Child |
10376907 |
Feb 2003 |
US |