• Chinese Journal of Lasers
  • Vol. 47, Issue 6, 611001 (2020)
Zhou Yanwen1、2, Miao Shuzhuo1、2, Yao Dan1、2, Dong Ming1、2, Zheng Chuantao1、2、*, and Wang Yiding1、2
Author Affiliations
  • 1State Key Laboratory of Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, Changchun, Jilin 130012, China
  • 2Jilin Provincial Engineering Research Center of Infrared Gas Sensing Technique, Changchun, Jilin 130012, China
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    DOI: 10.3788/CJL202047.0611001 Cite this Article Set citation alerts
    Zhou Yanwen, Miao Shuzhuo, Yao Dan, Dong Ming, Zheng Chuantao, Wang Yiding. Laser Methane Remote Sensor System Based on Wavelength Modulation Spectroscopy and Wavelet Denoising[J]. Chinese Journal of Lasers, 2020, 47(6): 611001 Copy Citation Text show less
    Schematic of the laser methane remote sensor system based on WMS and WD
    Fig. 1. Schematic of the laser methane remote sensor system based on WMS and WD
    Absorption signal and second harmonic signal simulated by MATLAB for methane sample with concentration of 100×10-6. (a) Ideal absorption signal; (b) ideal second harmonic signal; (c) polluted absorption signal; (d) polluted second harmonic signal; (e) denoised absorption signal; (f) denoised second harmonic signal
    Fig. 2. Absorption signal and second harmonic signal simulated by MATLAB for methane sample with concentration of 100×10-6. (a) Ideal absorption signal; (b) ideal second harmonic signal; (c) polluted absorption signal; (d) polluted second harmonic signal; (e) denoised absorption signal; (f) denoised second harmonic signal
    Absorption signal of CH4 and the second harmonic signal denoised by the EMD-based WD. (a) Absorption signal; (b) the second harmonic signal
    Fig. 3. Absorption signal of CH4 and the second harmonic signal denoised by the EMD-based WD. (a) Absorption signal; (b) the second harmonic signal
    Under a concentration level of 200×10-6 m, the extracted second harmonic signal using the lock-in amplifier program. (a) Extracted second harmonic without WD; (b) extracted second harmonic with WD
    Fig. 4. Under a concentration level of 200×10-6 m, the extracted second harmonic signal using the lock-in amplifier program. (a) Extracted second harmonic without WD; (b) extracted second harmonic with WD
    Relation curve of amplitude of the second harmonic signal are extracted by using an orthogonal lock-in amplifier program(the integral concentration levels of methane is (0--200)×10-6 m with an increase of 50×10-6 m for each sample). (a) Calibration result without WD; (b) the calibration result with WD
    Fig. 5. Relation curve of amplitude of the second harmonic signal are extracted by using an orthogonal lock-in amplifier program(the integral concentration levels of methane is (0--200)×10-6 m with an increase of 50×10-6 m for each sample). (a) Calibration result without WD; (b) the calibration result with WD
    Experimental calibration results and fitting curve. (a) Without WD; (b) with WD
    Fig. 6. Experimental calibration results and fitting curve. (a) Without WD; (b) with WD
    In nitrogen atmosphere, the measured Allan deviation curves. (a) Without WD; (b) with WD
    Fig. 7. In nitrogen atmosphere, the measured Allan deviation curves. (a) Without WD; (b) with WD
    Experimental results of dynamic response of the remote sensor system with WD
    Fig. 8. Experimental results of dynamic response of the remote sensor system with WD
    Zhou Yanwen, Miao Shuzhuo, Yao Dan, Dong Ming, Zheng Chuantao, Wang Yiding. Laser Methane Remote Sensor System Based on Wavelength Modulation Spectroscopy and Wavelet Denoising[J]. Chinese Journal of Lasers, 2020, 47(6): 611001
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