Claims
- 1. An apparatus for measuring a temperature distribution along an optical fiber, comprising:
- light source means for projecting a light pulse into the optical fiber;
- means for sensing Fresnel reflected light from an end of the optical fiber;
- means for performing a deconvolution a plurality of times on the Fresnel reflected light, the number of times of performing the deconvolution being determined such that a result of the deconvolution shows an impulse response waveform;
- optical filter means for receiving a Raman spectrum of backscattered light from the optical fiber and extracting an anti-Stokes component and a Stokes component of the Raman spectrum in the backscattered light;
- means for performing a deconvolution a plurality of times on the anti-Stokes component and the Stokes component to obtain an impulse response of the anti-Stokes component and an impulse response of the Stokes component, the number of times the deconvolution is to be performed on the Stokes and anti-Stokes components corresponding to the number of times the deconvolution is performed on the Fresnel reflected light; and
- means for obtaining a temperature distribution according to a ratio between the impulse responses of the anti-Stokes component and the Stokes component.
- 2. An apparatus according to claim 1, wherein the number of times the deconvolution is to be peformed is determined when a power of the apparatus is turned on or each time a predetermined period of time elapsed in operation.
- 3. A method of measuring a temperature distribution along an optical fiber, comprising the steps of:
- heating a portion of the optical fiber to a predetermined temperature, the portion having a predetermined length;
- projecting a light pulse into the optical fiber, the light pulse having a pulse width, half of which is longer than the predetermined length of said portion;
- receiving Fresnel reflected light from an end of the optical fiber;
- performing a deconvolution a plurality of times on the Fresnel reflected light, the number of times performing the deconvolution being determined such that a result of the deconvolution shows an impulse response waveform;
- projecting a light pulse into the optical fiber placed in an area where a temperature distribution is to be measured;
- receiving a Raman spectrum of backscattered light from the optical fiber and extracting an anti-Stokes component and a Stokes component of the Raman spectrum in the backscattered light; and
- performing a deconvolution a plurality of times on the Stokes component and the anti-Stokes component to obtain an impulse response of the Stokes component and an impulse response of the anti-Stokes component, the number of times the deconvolution is to be performed on the Stokes and anti-Stokes components corresponding to the number of times the deconvolution is performed on the Fresnel reflected light; and
- obtaining a temperature signal based on a ratio between the impulse response of the Stokes component and the anti-Stokes component.
Priority Claims (2)
Number |
Date |
Country |
Kind |
5-000643 |
Jan 1993 |
JPX |
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5-000646 |
Jan 1993 |
JPX |
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Parent Case Info
This application is a continuation of application Ser. No. 08/177,324, filed Jan. 4, 1994, now abandoned.
US Referenced Citations (12)
Foreign Referenced Citations (2)
Number |
Date |
Country |
0061622 |
Mar 1989 |
JPX |
2140554 |
Nov 1984 |
GBX |
Non-Patent Literature Citations (1)
Entry |
"Temperature Distribution Measurement Using Raman Ratio Thermometry", J.P. Dakin et. al., SPIE, Fiber Opic and Laser Sensors III, 566:249-256 (1985). |
Continuations (1)
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Number |
Date |
Country |
Parent |
177324 |
Jan 1994 |
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