Claims
- 1. An optical sensor, comprising:
an optical fiber; a fiber grating embedded within said optical fiber, said grating having a reflection wavelength bandwidth of a reflectivity profile for reflecting incident light; a coating of a material having a predetermined thickness and being around the circumference and along the length of said fiber grating; said coating exerting forces radially inward around and along said grating so as to cause said wavelength bandwidth of said reflectivity profile of said grating to become broader than it would be without said coating; and said forces on said grating being reduced when said coating is at least partially removed, thereby causing the wavelength bandwidth of said reflectivity profile of said grating to narrow.
- 2. The sensor of claim 1 wherein said optical fiber comprises a fiber core and a cladding surrounding said fiber core.
- 3. The sensor of claim 1 wherein said forces from said coating are non-uniformly distributed around and along said grating and disrupt a periodic refractive index variation of said grating, thereby causing the broadening of said wavelength bandwidth of said reflectivity profile.
- 4. The sensor of claim 1 wherein said forces from said coating also cause a peak reflection wavelength of said grating to exhibit a wavelength shift from a value that said peak reflection wavelength would be at without said coating and wherein said wavelength shift is reduced when said coating is at least partially removed.
- 5. The sensor of claim 4 wherein said forces from said coating exert an overall average force around and along said grating thereby causing said wavelength shift.
- 6. The sensor of claim 1 wherein said coating comprises aluminum.
- 7. The sensor of claim 1 wherein the removal of said coating comprises corrosion of said coating.
- 8. A method for making an optical sensor, comprising:
obtaining an optical fiber with a fiber grating embedded therein; applying a coating to said fiber grating around the circumference of and along the length of said grating; said coating being applied to said grating such that said coating exerts non-uniform forces around and along said grating; said forces causing said wavelength bandwidth of a reflectivity profile of said grating to become broader than it would be without said coating; and said forces on said grating being reduced when said coating is at least partially removed, thereby causing the wavelength bandwidth of said reflectivity profile of said grating to narrow.
- 9. The method of claim 8, wherein:
said coating exerts an overall average force around and along said grating thereby causing a peak reflection wavelength of said grating to exhibit a wavelength shift from a value that said peak reflection wavelength would be at without said coating and wherein said wavelength shift is reduced when said coating is at least partially removed.
- 10. The method of claim 8 wherein said coating comprises aluminum.
- 11. The method of claim 8 wherein said step of applying said coating comprises vapor deposition.
- 12. The method of claim 8 wherein said step of applying said coating comprises freeze coating.
- 13. The method of claim 8 wherein the removal of said coating comprises corrosion of said coating.
CROSS REFERENCES TO RELATED APPLICATIONS
[0001] Copending U.S. patent application Ser. No. (UTC Docket No. R-3869), entitled “Highly Sensitive Optical Fiber Cavity Coating Removal Detection”, filed contemporaneously herewith, contains subject matter related to that disclosed herein.
Continuations (1)
|
Number |
Date |
Country |
Parent |
08346059 |
Nov 1994 |
US |
Child |
10199966 |
Jul 2002 |
US |