Claims
- 1. An ultrasonic motor comprising:
- a stator having an electromechanical energy conversion element which is formed with an electrode on a surface thereof, and an elastic member which is excited by said electromechanical energy conversion element; and
- a rotor which is pressure-contacted to be in contact with said stator;
- wherein said stator includes: a first layer having said elastic member; a second layer having said electromechanical energy conversion element and said electrode; and a third layer between said first layer and said electrode of said second layer and having a spring modulus smaller than those of said first and second layers, said third layer being at least 3 .mu.m thick.
- 2. An ultrasonic motor according to claim 1, wherein said third layer is a buffer layer for preventing a travelling oscillatory wave from returning from the first layer to the second layer.
- 3. An ultrasonic motor according to claim 1, wherein said third layer is an energy storage layer which transmits vibrational energy but does not vibrate itself.
- 4. An ultrasonic motor according to claim 1, including spacers for ensuring the thickness of the third layer.
- 5. An ultrasonic motor according to claim 1, wherein said third layer is elongated outwardly to support said stator.
- 6. An ultrasonic motor according to claim 1, wherein said electromechanical energy conversion element is a piezoelectric member.
- 7. An ultrasonic motor comprising:
- a stator having an electromechanical energy conversion element which is formed with an electrode on a surface thereof, and an elastic member which is excited by said electromechanical energy conversion element to generate a vibration; and
- a driven element to be driven by said vibration;
- wherein said stator has a layer which is made of different material from those of said electromechanical energy conversion element and said elastic member, whose thickness is greater than 3 .mu.m, and which is provided between said electrode of said electromechanical energy conversion element and the elastic member.
- 8. An ultrasonic vibration motor comprising:
- a stator having an electromechanical energy conversion element which is formed with an electrode on a surface thereof, and an elastic member which is excited by said electromechanical energy conversion element to generate a vibration; and
- a driven element to be driven by said vibration,
- wherein said stator has a layer with a different mechanical property from those of the electromechanical energy conversion element and the elastic member and disposed between said electrode of the electromechanical energy conversion element and the elastic member,
- characteristics of the ultrasonic motor being determined in accordance with the material and the thickness of said layer, the thickness of said layer being greater than 3 .mu.m.
- 9. An ultrasonic vibration motor comprising:
- a stator having an electromechanical energy conversion element which is formed with an electrode on a surface thereof, and an elastic member which is excited by said electromechanical energy conversion element to generate a vibration; and
- a driven member which is pressure-contacted to be in contact with said stator and is driven by said vibration;
- wherein said stator includes: a first layer having said elastic member; a second layer having said electromechanical energy conversion element and said electrode; and a third layer disposed between said first layer and said electrode of said second layer, said third layer having a spring modulus smaller than those of said first and second layers and a thickness greater than 3 .mu.m such that said third layer is effective to substantially suppress obstruction of the vibration by said second layer.
- 10. An ultrasonic vibration motor comprising:
- a stator having an electromechanical energy conversion element having an electrode on a surface thereof, and an elastic member which is excited by said electromechanical energy conversion element to generate a vibration; and
- a driven element to be driven by said vibration;
- wherein said stator includes a layer disposed between said elastic member and said electrode of said electromechanical energy conversion element, and which has a different mechanical property from those of said electromechanical energy conversion element and said elastic member and further has a thickness greater than 3 .mu.m which is effective to substantially suppress obstruction of the vibration by said electromechanical energy conversion element.
- 11. A method of improving drive performance of an ultrasonic motor including a stator having an electromechanical energy conversion element which is formed with an electrode on a surface thereof and an elastic member which is excited by said electromechanical energy conversion element to generate a vibration; and a driven element to be driven by said vibration, said method comprising:
- providing, between the electrode of the electromechanical energy conversion element and the elastic member, a layer greater than 3 .mu.m thick of material having a different mechanical property from those of the electromechanical energy conversion element and the elastic member, and which is effective to substantially suppress obstruction of the vibration by the electromechanical energy conversion element.
- 12. An ultrasonic motor according to claim 1, wherein said third layer is greater than 4 .mu.m thick.
- 13. An ultrasonic motor according to claim 12, wherein said third layer has a modulus of longitudinal elasticity of from about 80 to about 250 kgf/mm.sup.2.
- 14. An ultrasonic motor according to claim 1, wherein said third layer is at least about 5 .mu.m thick.
- 15. An ultrasonic motor according to claim 1, wherein said third layer is from about 5 to about 9.5 .mu.m thick.
- 16. An ultrasonic motor according to claim 1, wherein said third layer has a modulus of longitudinal elasticity of from about 80 to about 250 kgf/mm.sup.2.
- 17. An ultrasonic motor according to claim 7, wherein the thickness of said layer is greater than 4 .mu.m.
- 18. An ultrasonic motor according to claim 17, wherein said layer has a modulus of longitudinal elasticity of from about 80 to about 250 kgf/mm.sup.2.
- 19. An ultrasonic motor according to claim 7, wherein the thickness of said layer is at least about 5 .mu.m.
- 20. An ultrasonic motor according to claim 7, wherein the thickness of said layer is from about 5 to about 9.5 .mu.m.
- 21. An ultrasonic motor according to claim 7, wherein said layer has a modulus of longitudinal elasticity of from about 80 to about 250 kgf/mm.sup.2.
- 22. An ultrasonic vibration motor according to claim 8, wherein the thickness of said layer is greater than 4 .mu.m.
- 23. An ultrasonic vibration motor according to claim 22, wherein said layer has a modulus of longitudinal elasticity of from about 80 to about 250 kgf/mm.sup.2.
- 24. An ultrasonic vibration motor according to claim 8, wherein the thickness of said layer is at least about 5 .mu.m.
- 25. An ultrasonic vibration motor according to claim 8, wherein the thickness of said layer is from about 5 to about 9.5 .mu.m.
- 26. An ultrasonic vibration motor according to claim 8, wherein said layer has a modulus of longitudinal elasticity of from about 80 to about 250 kgf/mm.sup.2.
- 27. An ultrasonic vibration motor according to claim 9, wherein the thickness of said third layer is greater than 4 .mu.m.
- 28. An ultrasonic vibration motor according to claim 27, wherein said third layer has a modulus of longitudinal elasticity of from about 80 to about 250 kgf/mm.sup.2.
- 29. An ultrasonic vibration motor according to claim 9, wherein the thickness of said third layer is at least about 5 .mu.m.
- 30. An ultrasonic vibration motor according to claim 9, wherein the thickness of said third layer is from about 5 to about 9.5 .mu.m.
- 31. An ultrasonic vibration motor according to claim 9, wherein said third layer has a modulus of longitudinal elasticity of from about 80 to about 250 kgf/mm.sup.2.
- 32. An ultrasonic vibration motor according to claim 10, wherein the thickness of said layer is greater than 4 .mu.m.
- 33. An ultrasonic vibration motor according to claim 32, wherein said layer has a modulus of longitudinal elasticity of from about 80 to about 250 kgf/mm.sup.2.
- 34. An ultrasonic vibration motor according to claim 10, wherein the thickness of said layer is at least about 5 .mu.m.
- 35. An ultrasonic vibration motor according to claim 10, wherein the thickness of said layer is from about 5 to about 9.5 .mu.m.
- 36. An ultrasonic vibration motor according to claim 10, wherein said layer has a modulus of longitudinal elasticity of from about 80 to about 250 kgf/mm.sup.2.
- 37. A method according to claim 11, wherein said layer is greater than 4 .mu.m thick.
- 38. A method according to claim 37, wherein said layer has a modulus of longitudinal elasticity of from about 80 to about 250 kgf/mm.sup.2.
- 39. A method according to claim 11, wherein said layer is at least about 5 .mu.m thick.
- 40. A method according to claim 11, wherein said layer is from about 5 to about 9.5 .mu.m thick.
- 41. A method according to claim 11, wherein said layer has a modulus of longitudinal elasticity of from about 80 to about 250 kgf/mm.sup.2.
- 42. An ultrasonic motor according to claim 17, wherein said layer has a modulus of longitudinal elasticity of at least about 80 kgf/mm.sup.2 but smaller than those of said electromechanical energy conversion element and said elastic member.
Priority Claims (1)
Number |
Date |
Country |
Kind |
4-228028 |
Aug 1992 |
JPX |
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Parent Case Info
This is a continuation of application Ser. No. 08/099,122 filed Jul. 29, 1993, now abandoned.
US Referenced Citations (11)
Non-Patent Literature Citations (1)
Entry |
Patent Abstracts of Japan, vol. 012, No. 447 (E-685) 24 Nov. 1988. |
Continuations (1)
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Number |
Date |
Country |
Parent |
099122 |
Jul 1993 |
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