Claims
- 1. An optical interferometric sensor for providing an output signal indicative of a measureand intended to be sensed, the optical sensor comprising:
an optical interferometer, including a pair of optical beams that travel along a defined optical path, where
said pair of optical beams are aligned in such a manner so as to permit the pair of optical beams to interfere with each other at a first spatial location, at least a portion of the defined optical path is configured such that a phase shift is induced between the pair of optical beams in response to a measureand and at least one photodetector responsive to at least a portion of the sum of said first and second optical beams and providing a beam signal indicative thereof; first signal means responsive to said beam signal for providing a first signal indicative of the visibility of the interferometer; signal processing means responsive to said beam signal and said first signal for providing an output signal indicative of said induced phase shift in response to the measurand.
- 2. The optical interferometric sensor of claim 1 wherein the measurand is selected one of electrical current flowing through a conductor and a voltage sensor.
- 3. The optical interferometric sensor of claim 1 further including signal processing means responsive to said first signal for deriving a signal indicative of interferometer temperature.
- 4. The optical interferometric sensor of claim 1 wherein said first signal means is operative such that said first signal is indicative of the long-term average value of said beam signal.
- 5. The optical interferometric sensor of claim 1 further including wherein said signal processing means includes,
signal modulator for modulating the phase shift between said pair of optical beams, and signal demodulator for demodulating said beam signal and providing a demodulation signal indicative thereof.
- 6. The optical interferometric sensor of claim 4 further including said signal processing means for comparing said first signal indicative of the visibility of the interferometer with a preselected limit indicative of interferometer loss of accuracy limit, and providing an output signal indicative of said comparison.
- 7. The optical interferometric sensor of claim 1 wherein said first signal means is operative for determining the average value of said beam signal, and said first signal is indicative of said average value.
- 8. The optical interferometric sensor of claim 7 wherein said first signal means is a low pass filter for determining the average value of said beam signal.
- 9. The optical interferometric sensor of claim 1 wherein the relationship between said beam signal and said phase shift output signal is directly affected in relation to said first signal indicative of the interferometer visibility.
- 10. The optical interferometric sensor of claim 1 further comprising.
second signal means responsive to said beam signal for providing a second signal indicative of the peak value of said beam signal which is indicative of the peak intensity of said of pair of optical beams, and providing a second signal indicative thereof; and beam source control means for controlling the peak value of said pair of optical beams as a function of said second signal so as to maintain the intensity of said pair of optical beams substantially a constant value.
- 11. The optical interferometric sensor of claim 1 further comprising:
second signal means responsive to said beam signal for providing a second signal indicative of the peak value of said beam signal which is indicative of the peak intensity of said of pair of optical beams, and providing a second signal indicative thereof; and wherein said signal processing means is responsive to said first and second signals for providing said output signal as a function thereof.
- 12. The optical interferometric sensor of claim 5 further comprising:
second signal means responsive to said beam signal for providing a second signal indicative of the peak value of said beam signal which is indicative of the peak intensity of said of pair of optical beams, and providing a second signal indicative thereof; and wherein said first signal means is operative for attenuating said first signal in response to said second signal, and wherein said signal demodulator is operative for attenuating said demodulation signal in response to said second signal.
- 13. An optical interferometric current sensor for providing an output signal indicative of an electrical current passing through a conductor, the optical current sensor comprising:
an optical interferometer, including a pair of optical beams that travel along a defined optical path, where
said pair of optical beams are aligned in such a manner so as to permit the pair of optical beams to interfere with each other at a first spatial location, at least a portion of the defined optical path is configured such that a phase shift is induced between the pair of optical beams in response to an electrical current, and at least one photodetector responsive to at least a portion of the sum of said first and second optical beams and providing a beam signal indicate thereof; first signal means responsive to said beam signal for providing a first signal indicative of the visibility of the interferometer; signal processing means responsive to said beam signal and said first signal for providing an output signal indicative of said induced phase shift in response to the electrical current.
- 14. The optical interferometric sensor of claim 7 further comprising:
measns for determining the peak value of said beam signal which is indicative of the peak intensity of said of pair of optical beams, and providing a second signal indicative thereof; and means for selective controlling the peak intensity of said pair of optical beams or normalizing said first signal and signal processing output signal in response to said second signal.
- 15. A fiber optic sensor, comprising:
a polarization maintaining optic fiber forming an optical path; two linearly polarized light waves traveling in said polarization maintaining optic fiber on said optical path; at least one quarter waveplate coupled to said optic fiber for converting said two linearly polarized light waves into two circularly polarized light waves traveling on said optical path toward a sensing region; said sensing region including a sensing medium coupled to said polarization maintaining optic fiber at generally a mid-point in said optical path, said circularly polarized light waves passing through said sensing medium experiencing a differential phase shift caused by a magnetic field or current flowing in a conductor proximate to said sensing region; a detector coupled to said optic fiber detecting said differential phase shift in said circularly polarized light waves producing an output signal correlative to a magnitude of said magnetic field or said current, said detector output signal including an incoherent D.C. light component introduced by imperfections in said quarter waveplate; first signal means responsive to said detector output signal for providing a first signal indicative of the visibility of the sensor; and signal processing means for receiving said detector output signal and correcting said detected magnitude in response,
to said incoherent D.C. light component in said detector output signal, and to said first signal indicative of the visibility of the optical current sensor so as to provide an accurate sensor measurement.
- 16. The fiber optics sensor of claim 15 wherein said first signal means is operative for determining the average of said detector output signal and providing said first signal indicative thereof.
- 17. A method of compensating an optical interferometer for optically sensing a measureand wherein the optical interferometric sensor includes a pair of optical beams that travel along a defined optical path, and at least a portion of the defined optical path is configured such that a phase shift is induced between the pair of optical beams in response to a measureand, the method comprising the steps of:
detecting the sum of said first and second optical beams having passed through said defined optical path, and providing a beam signal indicate thereof; determining the visibility of the interferometer in response to said beam signal and providing a first signal indicative thereof; determining a phase shift output signal indicative of said measureand in response to said beam signal as a function of said first signal indicative of visibility.
- 18. The method of claim 17 wherein said first signal indicative of said visibility is indicative of the average value of said beam signal.
- 19. The method of claim 17 further including the steps of:
determining the peak value of said beam signal which is indicative of the peak intensity of said of pair of optical beams, and providing a second signal indicative thereof; and controlling the peak value of said pair of optical beams as a function of said second signal so as to maintain the intensity of said pair of optical beams substantially a constant value.
- 20. The method of claim 17 further including the steps of:
determining the peak value of said beam signal which is indicative of the peak intensity of said of pair of optical beams, and providing a second signal indicative thereof; and wherein said step of determining the phase shift output signal indicative of the measureand is a function of said second signal so as to provide scale factor compensation in relation to variations in intensity of said pair of optical beams.
RELATED APPLICATION
[0001] This application claims the benefit of priority pursuant to 35 USC 119 of provisional patent application Ser. No. 60/329,817 filed Oct. 16, 2001, the disclosure of which application is hereby incorporated in its entirety by reference herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60329817 |
Oct 2001 |
US |