Claims
- 1. A microphone for converting sound into an electrical output, comprising:
a housing having a sound port for receiving said sound; a diaphragm located within said housing and undergoing movement in response to said sound; and a backplate positioned to oppose said diaphragm, said backplate having a first layer and a second layer attached to said first layer, said first layer and said second layer having different hygroscopic expansion coefficients for reducing the undesirable effects on said electrical output of said microphone due to changes in the ambient relative humidity.
- 2. The microphone of claim 1, further including a spacer positioned between said backplate and said diaphragm.
- 3. The microphone of claim 1, wherein said diaphragm has an acoustical compliance that increases in response to an increase in the ambient relative humidity.
- 4. The microphone of claim 3, wherein said diaphragm undergoes a diaphragm displacement toward said backplate in response to an increase in the ambient relative humidity.
- 5. The microphone of claim 4, wherein said differing hygroscopic expansion coefficients cause a backplate displacement to substantially overcome said undesirable effects due to said diaphragm displacement and said increased acoustical compliance caused by an increase in the ambient relative humidity.
- 6. The microphone of claim 1, wherein said first layer is a fluorinated ethylene propylene and said second layer is a polyimide.
- 7. The microphone of claim 1, wherein said diaphragm and said backplate both bend in the same direction in response to changes in the ambient relative humidity.
- 8. The microphone of claim 7, wherein said backplate bends further than said diaphragm in response to an increase in the ambient relative humidity.
- 9. The microphone of claim 1, wherein said first layer of said backplate is exposed to said diaphragm and is electrically charged.
- 10. A microphone for converting sound into an electrical signal, comprising:
a housing with a sound port for receiving said sound; a diaphragm undergoing movement in response to said sound; a backplate including a first layer of material with a first hygroscopic coefficient of expansion and a second layer of material with a second hygroscopic coefficient of expansion; and wherein said diaphragm moves toward said backplate in response to an increase in the relative humidity, said backplate moves away from said diaphragm in response to an increase in the relative humidity.
- 11. The microphone of claim 10, further including a spacer positioned between said backplate and said diaphragm.
- 12. The microphone of claim 10, wherein said diaphragm moves toward said backplate by approximately the same distance as said backplate moves away from said diaphragm.
- 13. The microphone of claim 10, wherein said diaphragm moves toward said backplate by a distance that is less than the distance that said backplate moves away from said diaphragm.
- 14. The microphone of claim 10, wherein said first layer is exposed to said diaphragm and is electrically charged, said second layer including a conductive surface coating for transmitting signals from said first layer.
- 15. The microphone of claim 14, wherein said first layer is a fluorinated ethylene propylene and said second layer is a polyimide.
- 16. The microphone of claim 14, wherein said first layer is thinner than said second layer.
- 17. The microphone of claim 14, wherein said surface coating is gold.
- 18. The microphone of claim 10, wherein said first layer is closer to said diaphragm, said second hygroscopic coefficient of expansion is larger than said first hygroscopic coefficient of expansion.
- 19. The microphone of claim 18, wherein said first hygroscopic coefficient of expansion is essentially zero relative to said second hygroscopic coefficient of expansion.
- 20. A method of reducing the effects of relative humidity on an output of a microphone, comprising:
determining a diaphragm displacement of a diaphragm relative to a backplate in response to a change in ambient relative humidity; selecting materials to be used in a first layer and a second layer of said backplate to cause a backplate displacement that at least partially offsets the effect of said diaphragm displacement on said output; and assembling said diaphragm and said backplate into said microphone.
- 21. The method of claim 20, further including determining a change to an acoustical compliance of said diaphragm in response to a change in the ambient relative humidity, and said selecting materials includes at least partially offsetting the effect of said change to said acoustical compliance due to a change in the ambient relative humidity.
- 22. The method of claim 20, wherein said selecting includes choosing dimensions of said first and second layers.
- 23. The method of claim 20, wherein said assembling includes attaching said first layer to said second layer.
- 24. The method of claim 23, wherein said attaching includes applying an adhesive between said first layer and said second layer.
- 25. The method of claim 23, wherein said attaching includes applying an intermediate metallic coating to one of said first and second layers and laminating said first layer to said second layer.
- 26. The method of claim 24, wherein said attaching includes applying an intermediate polymeric coating to said intermediate metallic coating.
- 27. The method of claim 23, wherein said attaching includes applying an intermediate polymeric coating between said first and second layers.
- 28. The method of claim 20, wherein said selecting includes determining the coefficients of hygroscopic expansion of said first layer and said second layer.
- 29. The method of claim 28, wherein said selecting further includes determining a displacement of said backplate in response to a change in the ambient relative humidity.
- 30. A microphone having a reduced humidity coefficient of sensitivity, comprising:
an electret assembly having a diaphragm that is moveable in response to sound and a backplate opposing said diaphragm, said backplate being made of a plurality of layers, at least one of said plurality of layers have a different hygroscopic coefficient of expansion than another of said plurality of layers resulting in a predetermined displacement of said backplate relative to said diaphragm due to changes in relative humidity, said predetermined displacement at least partially offsetting undesirable effects on an output of said microphone due to said changes in said relative humidity affecting said diaphragm.
- 31. The microphone of claim 30, further including a housing enveloping said electret assembly.
- 32. The microphone of claim 30, wherein said plurality of layers includes a layer of fluorinated ethylene propylene and a layer of polyimide.
- 33. The microphone of claim 30, wherein said humidity coefficient is less than approximately 0.03 dB per 1% increase in relative humidity.
- 34. The microphone of claim 33, wherein said humidity coefficient is approximately 0.01 dB per 1% increase in relative humidity.
- 35. A microphone for converting sound into an electrical signal, comprising:
a housing with a sound port for receiving said sound; a diaphragm undergoing movement in response to said sound; and a backplate being made of a first polymeric layer and a second polymeric layer, said first polymeric layer being exposed to said diaphragm and, together with said diaphragm, transducing a signal corresponding to said sound.
- 36. The microphone of claim 35, wherein said second polymeric layer has a coefficient of hygroscopic expansion that is larger than a coefficient of hygroscopic expansion of said first polymeric layer.
- 37. The microphone of claim 35, wherein said first polymeric layer is fluorinated ethylene propylene and said second polymeric layer is polyimide.
- 38. The microphone of claim 37, further including a metallic coating between said first polymeric layer and said second polymeric layer for transmitting said signal corresponding to said sound.
- 39. The microphone of claim 37, wherein said first polymeric layer and said second polymeric layer are laminated.
- 40. The microphone of claim 35, wherein said microphone has a humidity coefficient that is less than approximately 0.03 dB per 1% increase in relative humidity.
- 41. The microphone of claim 40, wherein said humidity coefficient is approximately 0.01 dB per 1% increase in relative humidity.
- 42. The microphone of claim 35, wherein said first layer is charged.
RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 10/124,683, filed Apr. 17, 2002, which claims the benefit of priority of U.S. Provisional Patent Application Nos. 60/301,736, filed Jun. 28, 2001, and 60/284,741, filed Apr. 18, 2001.
Provisional Applications (2)
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Number |
Date |
Country |
|
60301736 |
Jun 2001 |
US |
|
60284741 |
Apr 2001 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
| Parent |
10124683 |
Apr 2002 |
US |
| Child |
10210571 |
Aug 2002 |
US |