Claims
- 1. Strain sensor comprising a first fiber grating optically coupled to a second fiber grating wherein, when said strain sensor is mechanically strained, said first fiber grating realizes corresponding axial strain and said second fiber grating does not realize corresponding axial strain.
- 2. Strain sensor of claim 1, wherein said first fiber grating and said second fiber grating exist in a single fiber.
- 3. Strain sensor of claim 1, wherein said second fiber grating realizes thermally-induced strain.
- 4. Strain sensor of claim 1, further comprising a carrier, said first fiber grating being fixed to said carrier and said second fiber grating being independent of said carrier.
- 5. Strain sensor of claim 4, wherein said carrier has a groove configured to receive said second fiber grating defining a non-linear configuration.
- 6. Strain sensor of claim 1, wherein, when said strain sensor realizes strain, said second fiber grating realizes bending strain.
- 7. Strain sensor of claim 1, wherein said second fiber grating has a first end and a second end, said strain sensor further comprising a plate for constraining movement of said first end and said second end.
- 8. Strain sensor of claim 7, wherein said plate has a first crimp lead for retaining said first end, and a second crimp lead, for retaining said second end.
- 9. Strain sensor of claim 7, wherein said plate defines a passage for receiving said second fiber grating.
- 10. Strain sensor of claim 9, wherein said passage is configured to receive said second fiber grating defining a non-linear configuration.
- 11. Strain sensor of claim 9, further comprising a carrier having a groove for receiving said second fiber grating, wherein said passage corresponds to said groove.
- 12. Strain sensor of claim 11, wherein said groove is configured to receive said second fiber grating defining a non-linear configuration.
- 13. Strain sensor of claim 7, further comprising:
a carrier, said first fiber grating being fixed to said carrier and said second fiber grating being independent of said carrier; and an adhesive disposed between said carrier and said plate.
- 14. Strain sensor of claim 7, further comprising:
a carrier, said first fiber grating being fixed to said carrier and said second fiber grating being independent of said carrier; and a cover disposed on said plate, said first fiber grating, said second fiber grating and said carrier.
- 15. Strain sensor of claim 14, further comprising an adhesive adhering said cover, said plate, said first fiber grating, said second fiber grating and said carrier.
- 16. Strain sensor of claim 4, wherein said carrier is constructed from a non-reinforced polyimide laminate or a ductile metal.
- 17. Strain sensor of claim 14, wherein said cover is constructed from a non-reinforced polyimide laminate.
- 18. Strain sensor of claim 7, wherein said plate is constructed from brass or a ductile material.
- 19. Strain sensor of claim 1, wherein the tension in said first fiber grating is such that said strain sensor is responsive to substantially equivalent amounts of tensile stress and compressive stress.
- 20. Strain sensor of claim 13, wherein said adhesive is activated by heat and pressure.
- 21. A strain sensor system comprising:
a light source; a scanning Fabry-Perot device in optical communication with said light source; one or more strain sensors, according to claim 1, each having an input end in optical communication with said scanning Fabry-Perot device; a detector exclusively dedicated to and in optical communication with an output end of each of said strain sensors; and a microprocessor responsive to said detectors.
- 22. A strain sensor system comprising:
a light source; one or more strain sensors, according to claim 1, each having an input end in optical communication with said light source; an interferometer exclusively dedicated to and in optical communication with each of said strain sensors; a wavelength division multiplexer dedicated to and in optical communication with each of said interferometers; and a set of demodulation circuits dedicated to and in optical communication with each of said wavelength division multiplexers, wherein a number of demodulation circuits in each of said sets corresponds to a number of gratings a fiber in optical communication with said wavelength division multiplexer.
- 23. Strain sensor comprising:
a carrier; and a fiber grating mounted on said carrier.
- 24. Strain sensor of claim 23, wherein said carrier is constructed from a non-reinforced polyimide laminate or a ductile metal.
- 25. Strain sensor of claim 23, further comprising a cover mounted on said fiber grating and said carrier.
- 26. Strain sensor of claim 25, wherein said cover is constructed from a non-reinforced polyimide laminate.
- 27. Method of measuring strain comprising:
transferring strain to a first fiber grating; isolating a second fiber grating from the strain; and modifying a value derived from the first fiber grating by a second value derived from the second fiber grating.
- 28. Method of claim 27, wherein said isolating comprises preventing the second fiber grating from realizing axial strain.
- 29. Method of claim 27, wherein the second value corresponds to temperature-induced strain.
- 30. Method of claim 27, further comprising connecting the first fiber grating to a host structure with a non-reinforced polyimide laminate.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application incorporates and claims priority to U.S. Provisional Application No. 60/221,208, filed Jul. 27, 2000, by P. C. Chen et al., entitled FIBER OPTIC STRAIN SENSOR.
Provisional Applications (1)
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Number |
Date |
Country |
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60221208 |
Jul 2000 |
US |