Claims
- 1. A fiber optic pressure sensor, comprising:a pressure detecting device comprising a glass material that is elastically deformable as a function of applied pressure; and an optical fiber being wrapped at least once around said device and having at least a portion of its length fused to said device such that elastic deformation of said device imparts an axial strain along a longitudinal axis of said fiber due to said applied pressure.
- 2. The pressure sensor of claim 1 wherein said device has a cylindrical geometry.
- 3. The pressure sensor of claim 1 wherein said device has an axial bore formed therein.
- 4. The pressure sensor of claim 3 wherein axial ends of said bore are closed.
- 5. The pressure sensor of claim 3 wherein said fiber is fused around at least a portion of an inner dimension of said bore.
- 6. The pressure sensor of claim 3 wherein said bore is filled at least partially with a fluid.
- 7. The pressure sensor of claim 3 wherein said bore has an inner dimension that tapers radially along a length of said device.
- 8. The pressure sensor of claim 1 wherein said fiber is fused around at least a portion of an outer dimension of said device.
- 9. The pressure sensor of claim 1 wherein said fiber has at least one grating disposed therein.
- 10. The pressure sensor of claim 9 wherein said fiber is fused to said device at least at the location of said grating.
- 11. The pressure sensor of claim 10 wherein said grating has a characteristic wavelength that changes as applied pressure changes.
- 12. The pressure sensor of claim 1 wherein said fiber has at least one pair of gratings disposed therein.
- 13. The pressure sensor of claim 1 wherein at least a portion of said fiber is fused to a glass tube which is fused to at least a portion of said device.
- 14. The pressure sensor of claim 1 wherein said fiber has at least one pair of gratings and said fiber is doped with a rare earth dopant at least between said pair of gratings to form a fiber laser.
- 15. The pressure sensor of claim 14 wherein said fiber laser lases at a lasing wavelength which changes as applied pressure changes.
- 16. The pressure sensor of claim 1 wherein said device comprises silica.
- 17. The pressure sensor of claim 1 wherein said device comprises quartz.
- 18. The pressure sensor of claim 1 wherein said fiber has a grating therein and at least a portion of said fiber is doped with a rare earth dopant where said grating is located and said grating is configured to form a DFB fiber laser.
- 19. The pressure sensor of claim 18 wherein said DFB fiber laser lases at a lasing wavelength which changes as applied pressure changes.
- 20. The pressure sensor of claim 1 wherein said device comprises a clamshell geometry.
- 21. The pressure sensor of claim 1 wherein said device comprises a circular cross-section.
- 22. The pressure sensor of claim 1 wherein said fiber is fused to and embedded within said device.
CROSS REFERENCE TO RELATED APPLICATIONS
This is a continuation-in-part of U.S. patent application, Ser. No. 09/205,848, filed Dec. 4, 1998 (now abandoned). Also, U.S. patent applications, Ser. No. 09/399,404, entitled “Tube-Encased Fiber Grating Pressure Sensor” (now abandoned); Ser. No. 09/399,495 entitled “Tube-Encased Fiber Grating” (now abandoned); Ser. No. 09/400,364, entitled “Tube-Encased Strain-Isolated Fiber Grating Temperature Sensor” (now abandoned); and Ser. No. 09/400,363, entitled “Tube-Encased Pressure-Isolated Fiber Grating Temperature Sensor” (now abandoned), all filed contemporaneously herewith, and Ser. No. 09/205,845, entitled “Method and Apparatus for Forming a Tube-Encased Bragg Grating”, filed Dec. 4, 1998 all contain subject matter related to that disclosed herein, which are incorporated herein by reference.
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09/205848 |
Dec 1998 |
US |
Child |
09/399504 |
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US |