Claims
- 1. A fiber grating sensor system to measure environmental effects consisting of:
light source means that couples light into one end of a first beamsplitter, a second end of said first beamsplitter that directs light toward a first fiber grating sensor, a third end of said first beamsplitter that is designed to be antireflective and, a fourth end to said first beamsplitter connecting to one end of a second beamsplitter, said second beamsplitter having a second end connected to a wavelength filter, said second beamsplitter having a third end connected to a first light output detection means and said second beamsplitter having a fourth end connected to a second light output detection means, and said first fiber grating sensor and said wavelength filter being substantially collocated to reduce undesired environmental effects.
- 2. The fiber grating sensor system of claim 1 where said wavelength filter is a fiber grating.
- 3. The fiber grating sensor system of claim 2 where said fiber grating sensor is bonded to surface with hard material and said fiber grating wavelength filter is bonded to the surface with soft material.
- 4. The fiber grating sensor system of claim 2 where said fiber grating sensor is bonded to a surface with soft material and said fiber grating wavelength filter is bonded to the surface with hard material.
- 5. The fiber grating sensor system of claim 2 where said fiber grating sensor is put under tension at anchor points and said fiber grating wavelength filter is placed in an unstrained condition.
- 6. The fiber grating sensor system of claim 5 where said fiber grating sensor is put under tension in a tube and is prestrained between two anchor points at either end of the tube and said fiber wavelength filter is attached to one end of said tube and unstrained in a second tube with low friction.
- 7. A fiber grating strain sensor consisting of a fiber grating inside a tube with one end of the optical fiber containing said fiber grating attached to one end of said tube and the other end of said optical fiber containing said fiber grating being loose in said tube.
- 8. A fiber grating strain sensor as in claim 7 where the interior surface of the said tube contains an adhesive to cause friction between said fiber grating and said tube.
- 9. A fiber grating strain sensor as in claim 7 where said tube containing said fiber grating is filled with a high viscosity fluid.
- 10. A fiber grating strain sensor as in claim 7 where said fiber grating has the loose end attached to an elastic material that is attached to the opposite end of the tube so that said fiber grating sensor is under tension.
- 11. A fiber grating strain sensor as in claim 10 where said elastic material is a spring.
- 12. A fiber grating strain sensor where a fiber grating is placed in a beam and embedded in a road to characterize traffic.
- 13. A fiber grating strain sensor as in claim 12 where said fiber grating is adhesively attached to said beam.
- 14. A fiber grating stain sensor as in claim 12 where said fiber grating strain sensor is embedded in said beam.
- 15. A fiber grating sensor system as in claim 2, that includes: said fiber grating sensor having a coating responsive to humidity, and said fiber grating filter having a coating that is responsive mainly to temperature, and having said fiber grating sensor and said fiber grating filter located in close physical proximity.
- 16. A fiber grating sensor system as in claim 15 that includes: said coating of said fiber grating sensor being polyimide and said coating of said fiber grating filter being epoxy acrylate.
- 17. A fiber grating moisture sensor transducer consisting of: a fiber grating mounted in a water permeable tube that is attached and prestrained at both ends, a material located inside the tube that expands in the presence of moisture causing strain on the tube and the fiber grating.
- 18. A fiber grating moisture content measurement system consisting an optical fiber attached to a humidity sensor placed in a tube with a permeable membrane in close proximity to the humidity sensor; and a dry gas source that provides dry gas flow through said tube to dry said humidity sensor; and means to read out said humidity sensor.
- 19. A fiber grating moisture content measurement system as in claim 18 where the said humidity sensor consists of a fiber grating sensor in said optical fiber that is coated with humidity sensitive material and a second fiber grating sensor that is coated with a material sensitive primarily to temperature, and wavelength readout means.
- 20. A fiber grating moisture content measurement system as in claim 18 where said humidity sensor consists of a fiber grating sensor in said optical fiber that is coated with humidity sensitive material and a second optical fiber, said second optical fiber having a fiber grating filter that is coated with material that is sensitive primarily to temperature and wavelength readout means.
- 21. A fiber grating moisture content measurement system as in claim 20 where: said coating of fiber grating sensor is polyimide and said coating fiber grating filter is epoxy acrylate.
- 22. The fiber grating sensor system of claim 1 where: said first light source couples into an N port coupler and each output of said N port coupler acts as a light source for N fiber grating sensor systems according to claim 1.
- 23. The fiber grating sensor system of claim 1 where: said second end of said first beamsplitting means has a plurality of fiber grating sensors centered at wavelengths λ1, λ2, λ3, . . . λn and said second end of said second beamsplitting means has a plurality of wavelength matched fiber grating filters centered at λ1, λ2, λ3, . . . λn and said fourth end of said second beamsplitting means being connected to wavelength division multiplexing means whose outputs are connected to a plurality of detector means to monitor output wavelength signals at λ1, λ2, λ3, . . . λn.
- 24. A traffic monitoring system consisting of: a first optical fiber cable with a plurality of fiber optic strain sensors with strain sensing regions covering a portion of a plurality of traffic lanes, and a second optical fiber cable with a plurality of fiber optic strain sensors with strain sensing regions covering a portion of a plurality of traffic lanes that are offset spatially form the fiber optic strain sensors in said first optical fiber cable.
- 25. A fiber grating strain sensor as in claim 12 where said beam is composite.
- 26. A fiber grating sensor system to measure environmental effects as in claim 1 where said first beamsplitter is a circulator: said circulator having first end attached to said light source, said circulator having second end attached to said fiber grating sensor and having third end attached to said first end of said second beamsplitter.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application No. 60/342,914 by Eric Udd, Sean G. Calvert, Whitten L. Schulz, W. Marley Kunzler, and M. Wesley Kunzler, “Fiber Grating Sensor Systems” which was filed on Dec. 21, 2002.
Government Interests
[0002] This invention was made with Government support from contract DEFG03-99ER82753 awarded by DOE and contract N00421-02-C-3081 awarded by NAVAIR. The government has certain rights to this invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60342914 |
Dec 2001 |
US |