Title :
Distributed optical fibre temperature sensor using spread-spectrum techniques
Author :
Everard, J.K.A. ; Thomas, Robert
Author_Institution :
Dept. of Electron. & Electr. Eng., King´s Coll., London, UK
Abstract :
The authors describe a Raman-based distributed temperature sensor which uses spread-spectrum pseudorandom sequences to obtain high-resolution, rapid-response measurements of temperature. The sensor operates by launching a semiconductor laser beam modulated with a pseudorandom bit sequence (PRBS) into an optical fibre where the average launch power into the fibre was 5 mW. The backscattered light is detected via a fibre coupler which was built with 1 km pigtail to prevent unwanted reflections. The optical signal is then filtered using a Fabry-Perot stack to measure the Stokes and the anti-Stokes Raman lines and detected using an avalanche photodiode transimpedance amplifier combination. The output signal is then multiplied by a delayed version of the pseudorandom signal, which because of the autocorrelation function allows the spatial information to be obtained without ambiguity.
Keywords :
Raman spectra; backscatter; fibre optic sensors; temperature distribution; temperature measurement; 5 mW; Fabry-Perot stack; Raman based configuration; Stokes Raman lines; antiStokes Raman lines; autocorrelation function; avalanche photodiode transimpedance amplifier; backscattered light detection; distributed temperature sensor; fibre coupler; fibre optic sensor; high-resolution; modulated laser beam; optical fibre; pseudorandom sequences; rapid-response measurements; semiconductor laser beam; spatial information; spread-spectrum techniques;
Journal_Title :
Electronics Letters
DOI :
10.1049/el:19890102