Title :
Continuous-Wave Frequency-Shifted Interferometry Cavity Ring-Down Gas Sensing With Differential Optical Absorption
Author :
Tian, H. ; Zhou, C.M. ; Fan, D. ; Ou, Y.W. ; Tian, T. ; Liang, W.L. ; Li, M.M.
Author_Institution :
Nat. Eng. Lab. for Fiber Opt. Sensing Technol., Wuhan Univ. of Technol., Wuhan, China
Abstract :
This paper proposes a novel frequency-shifted interferometry (FSI) fiber cavity ring-down (CRD) gas sensing with dual-wavelength differential optical absorption that requires no modulation to a continuous-wave source or without fast detection and switching electronics. The fiber cavity is constructed from standard fiber optical components that include a micro-optical gas cell. FSI-CRD experiments are carried out with two wavelengths at 1531.770 and 1532.000 nm. The technique is successfully carried out by measuring acetylene-nitrogen mixtures with acetylene concentrations varying from 0% to 1.0%. A resolution of 7.8125%/dB is obtained. A minimum detectable acetylene concentration of 105.25 ppm was achieved with a 48-mm gas cell. The results show a good linear relationship between acetylene concentration and absorption loss and are in good agreement with existing theories. Dual-wavelength differential optical absorption can enhance measurement precision efficiently and eliminate the influence of various external factors. The relative deviation of measured concentration is less than ±0.29%, measured at 1.0% acetylene concentration over 70 min.
Keywords :
fibre optic sensors; gas sensors; light interferometry; micro-optics; optical resonators; organic compounds; absorption loss; acetylene concentrations; acetylene-nitrogen mixtures; continuous-wave frequency-shifted interferometry cavity ring-down gas sensing; dual-wavelength differential optical absorption; fiber cavity; measurement precision; micro-optical gas cell; wavelength 1531.77 nm to 1532 nm; Absorption; Cavity resonators; Optical fiber sensors; Optical fibers; Optical interferometry; Sensors; cavity ring-down (CRD); frequency-shifted interferometry (FSI); gas measurement; novel methods; systems;
Journal_Title :
Photonics Journal, IEEE
DOI :
10.1109/JPHOT.2015.2423559