Claims
- 1. An ultrasonic pump comprising:
- a resonant member having low internal damping and asymmetrically tapered to a thin edge;
- a driver mounted on said resonant member; and
- means for applying an alternating voltage to said driver in the resonant range of said resonant member for vibrating said resonant member in an open node line pattern which intesects with said thin edge.
- 2. The ultrasonic lump of claim 1 wherein said driver includes a thin piezoelectric element.
- 3. The ultrasonic pump of claim: 1 further including means for mounting a perforated plate adjacent said tapered surface at the position of dynamic equilibrium between the acoustic pressure away from the surface and the recoil pressure toward said tapered surface.
- 4. The ultrasonic of claim 3 further including means for loosely mounting said perforated plate adjacent said tapered surface to permit said plate to seek its position of dynamic equilibrium between the acoustic pressure away from the surface and the recoil pressure toward said tapered surface.
- 5. The ultrasonic pump of claim 1 in which said resonant member is asymmetrically tapered to two thin edges.
- 6. The ultrasonic pump of claim 1 in which said resonant member includes a generally planar section.
- 7. The ultransonic pump of claim 1 in which said driver is mounted on the bottom of said resonant member.
- 8. The ultransonic pump of claim 1 in which said driver is mounted on the top of said resonant member.
- 9. The ultrasonic pump of claim 1 in which said driver is mounted on the side of said resonant member.
- 10. The ultrasonic pump of claim 1 in which said means for applying includes an electrode on the opposite side of said driver from said resonant member.
- 11. The ultransonic pump of claim 1 in which said resonant member functions as an electrode for said driver
- 12. The ultrasonic pump of claim 3 in which said perforated plate includes approximately 270 holes per square inch.
- 13. The ultrasonic pump of claim 3 in which the perforations in said perforated plate are approximately 0.007-0.01 inch in diameter.
- 14. The ultrasonic pump of claim 4 in which said perforated plate is metal.
- 15. The ultransonic pump of claim 3 in which the perforations are formed with generally conical walls converging away from said tapered surface.
- 16. The ultrasonic pump of claim 3 in which said perforated plate is generally planar.
- 17. The ultrasonic pump of claim 3 in which said perforated plate is an inverted "V" channel.
- 18. The ultrasonic pump of claim 1 including means for mounting said resonant member remote form said thin edge.
- 19. The ultrasonic pump of claim 1 in which said node line pattern has two inflection points near its intersection with said thin edge.
- 20. The ultrasonic pump of claim 1 in which said node line pattern is generally circular.
- 21. The ultrasonic pump of claim 1 in which said node lines pattern has two inflection points near its intersection with said thin edge and means for mounting a perforated plate on said resonant member adjacent said inflection points.
- 22. The ultrasonic pump of claim 1 in which the Q-factor of said resonant member is greater than 300.
- 23. The ultrasonic pump of claim 1 in which said resonant member is made of material selected from the group consisting of tempered aluminum alloys and carbon steel.
- 24. An ultrasonic pump comprising:
- a resonant member having a Q-factor greater than 300 and including a first end, a second opposite end tapered to a thin edge, and at least one surface interconnecting said first and second ends; of
- a driver mounted on said interconnecting surface said resonant member remote from said thin edge; and
- means for applying an alternating voltage to said driver in the resonant range of said resonant member for vibrating said resonant member in an a generally circular open node line pattern which intersects with said thin edge and has two inflection points near its intersection with said thin edge.
- 25. The ultrasonic pump of claim 24 wherein said driver comprises a thin piezoelectric driver element distinct from and mounted on said resonant member.
- 26. The ultrasonic pump of claim 24 further including means for mounting a perforated plate above said tapered surface at the position of dynamic equilibrium between the acoustic pressure away from the surface and the recoil pressure toward said tapered surface.
- 27. The ultrasonic pump of claim 24 in which said resonant member is made of material selected from the group consisting of tempered aluminum alloys and carbon steel.
- 28. An ultrasonic blower comprising:
- a resonant member having low internal damping and asymmetrically tapered to a thin edge;
- a piezoelectric driver mounted on said resonant member;
- a perforated plate mounted on said resonant member spaced from said tapered surface; and
- means for applying an alternating voltage to said piezoelectric driver in the resonant range of said resonant member for vibrating said resonant member in an open node line pattern which intersects with said thin edge and pumps fluid away from said thin edge.
- 29. An ultrasonic pump comprising:
- a resonant member having low internal damping and asymmetrically tapered to a thin edge;
- a driver mounted on said resonant member;
- means for applying an alternating voltage to said driver in the resonant range of said resonant member for vibrating said resonant member; and
- means for mounting a perforated plate adjacent said tapered surface at the position of dynamic equilibrium between the acoustic pressure away from the surface and the recoil pressure toward said tapered surface.
- 30. The ultrasonic pump of claim 29 wherein said driver includes a thin piezoelectric element.
- 31. The ultrasonic pump of claim 29 in which said resonant member is asymmetrically tapered to two thin edges.
- 32. The ultrasonic transducer of claim 29 in which said resonant member includes a generally planar section.
- 33. The ultrasonic pump of claim 29 in which said driver is mounted on the bottom of said resonant member.
- 34. The ultrasosnic pump of claim 29 in which said driver is mounted on the top of said resonant member.
- 35. The ultrasonic pump of claim 29 in which said driver is mounted on the side of said resonant member.
- 36. the ultrasonic pump of claim 29 in which said means for applying includes an electrode on the opposite side of said driver from said resonant member.
- 37. The ultrasonic transducer of claim 29 in which said resonant member functions as an electrode for said driver.
- 38. The ultrasonic pump of claim 29 in which said perforated plate includes approximately 270 holes per square inch.
- 39. The ultrasonic pump of claim 29 in which the perforations in said perforated plate are approximately 0.007-0.01 inch in diameter.
- 40. The ultrasonic pump of claim 29 in which said perforated palte is metal.
- 41. The ultrasonic transducer of claim 29 in which the perforations are formed with generally conical walls coverging away from said tapered surface.
- 42. The ultrasonic pump of claim 29 in which said perforated plate is generally planar.
- 43. The ultrasonic pump of claim 29 in which said perforated plate is an inverted "V" channel.
- 44. The ultrasoinc pump of claim 29 in which said resonant member is mounted remote from said thin edge.
- 45. The ultrasonic pump of claim 29 wherein said resonant member is made of a material selected from the group consisting of tempered aluminum alloys and carbon steel.
- 46. The ultrasonic pump of claim 29 in which the Q-factor of said resonant member is greater than 300.
- 47. An ultrasonic pump comprising:
- a resonant member having low internal damping and asymmetrically tapered to a thin edge;
- a driver mounted on said resonant member;
- means for applying an alternating voltage to said driver in the resonant range of said resonant member for vibrating said resonant member; and
- means for loosely mounting a perforated plate adjacent said tapered surface to permit said plate to seek its position of dynamic equilibrium between the acoustic pressure away from the surface and the recoil pressure toward said tapered surface.
Parent Case Info
This is a continuation of application Ser. No. 625,704, filed June 28, 1984 now abandoned.
US Referenced Citations (4)
Foreign Referenced Citations (6)
Number |
Date |
Country |
477143 |
Dec 1914 |
FRX |
WO8002445 |
Nov 1980 |
WOX |
289372 |
Mar 1953 |
CHX |
2044705 |
Oct 1980 |
GBX |
2049594 |
Dec 1980 |
GBX |
2071924 |
Sep 1981 |
GBX |
Non-Patent Literature Citations (3)
Entry |
Fitzpatrick, "Natural Flight & Related Aeronautics", Institute of the Aeronautical Sciences, 7-1952, p. 5. |
"A Piezoelectric Cooling Fan", Computers & Electronics, 3-1983, p. 104. |
Toda, "Vibrational Fan Using the Piezoelectric Polymer PVF.sub.2 ", Proceedings of the IEEE, vol. 67, Aug. 1979, p. 1171. |
Continuations (1)
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Number |
Date |
Country |
Parent |
625704 |
Jun 1984 |
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