Title :
All frequency domain distributed fiber-optic Brillouin sensing
Author :
Bernini, Romeo ; Crocco, Lorenzo ; Minardo, Aldo ; Soldovieri, Francesco ; Zeni, Luigi
Author_Institution :
Inst. per il Rilevamento Elettromagnetico dell´´Ambiente, CNR, Naples, Italy
Abstract :
A frequency domain approach to distributed fiber-optic Brillouin sensing is presented and numerically analyzed. In this technique, both measurements and signal processing are performed in the frequency domain. We use an integral equation which directly relates the Brillouin gain to the Brillouin signal in the frequency domain in order to develop a new technique for the quantitative reconstruction of temperature-strain profiles along an optical fiber. The reconstruction is achieved by minimizing a cost function representing the error between the measured and the model data. Such a minimization is effectively performed by representing the unknown (temperature-strain) profile with a finite number of parameters. Numerical results confirm the effectiveness of the proposed approach and its stability with respect to measurement errors.
Keywords :
Brillouin spectra; distributed sensors; fibre optic sensors; frequency-domain analysis; integral equations; measurement errors; strain sensors; temperature sensors; Brillouin gain; cost function; distributed fiber-optic Brillouin sensing; fiber-optic Brillouin sensing; frequency domain approach; integral equation; measurement errors; quantitative reconstruction; signal processing; stability; temperature-strain profiles; Brillouin scattering; Capacitive sensors; Frequency domain analysis; Frequency measurement; Optical fiber sensors; Optical fibers; Optical refraction; Optical scattering; Optical sensors; Temperature sensors;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2003.810111