Acta Photonica Sinica, Volume. 53, Issue 3, 0330001(2024)
Near-infrared Methane Gas Detection Technology Based on TDLAS with High Sensitivity
[1] YE W, TU Z, XIAO X et al. A NDIR mid-infrared methane sensor with a compact pentahedron gas-cell[J]. Sensors, 20, 5461(2020).
[2] CHEN Guohua, DONG Haoyu, ZHANG Qiang et al. Review on the methane-air explosion accidents in the narrow confined space[J]. Journal of Safety and Environment, 20, 946-959(2020).
[3] WANG Biao, LU Hongfei, LI Aoqi et al. Research of TDLAS methane detection system using VCSEL laser as the light source[J]. Infrared and Laser Engineering, 49, 0405002(2020).
[4] PALKA D. Modeling and simulation of the methane risk in the mining production process[J]. Multidisciplinary Aspects of Production Engineering, 4, 1-13(2021).
[5] MENG X, CHANG H, WANG X. Methane concentration prediction method based on deep learning and classical time series analysis[J]. Energies, 15, 2262(2022).
[6] LI C, DONG L, ZHENG C et al. Compact TDLAS based optical sensor for ppb-level ethane detection by use of a 3.34 μm room-temperature CW interband cascade laser[J]. Sensors and Actuators B: Chemical, 232, 188-194(2016).
[7] LIU Yang, WU Jianan, CHEN Meimei et al. The trace methane sensor based on TDLAS-WAS[J]. Spectroscopy and Spectral Analysis, 36, 279-282(2016).
[8] HE Q, DANG P, LIU Z et al. TDLAS-WMS based near-infrared methane sensor system using hollow-core photonic crystal fiber as gas-chamber[J]. Optical and Quantum Electronics, 49, 115(2017).
[9] SHAO L, FANG B, ZHENG F et al. Simultaneous detection of atmospheric CO and CH4 based on TDLAS using a single 2.3 μm DFB laser[J]. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 222, 117118(2019).
[10] ZHAO Chenglong, HUANG Danfei, LIU Zhiying et al. Measurement of trace CO2 concentration with open-path TDLAS-WMS technology[J]. Acta Photonica Sinica, 51, 0230001(2022).
[11] YAN Ge, ZHANG Lei, YU Ling et al. Mid-infrared methane sensor system for natural gas leakage detection and its application[J]. Chinese Journal of Lasers, 49, 1810001(2022).
[12] WANG R, PENG J, CAO Y et al. Double-enhanced multipass cell-based wavelength modulation spectroscopy CH4 sensor for ecological applications[J]. Optics Express, 31, 3237(2023).
[13] XIN Fengxin, LI Jie, GUO Jinjia et al. Measurement of atmospheric CO2 column concentration based on open-path TDLAS[J]. Sensors (Basel, Switzerland), 21, 1722(2021).
[14] DENG Yao, TANG Wen, LI Zhenghui et al. Gas concentration inversion method based on calibration of direct absorption peak value[J]. Laser & Optoelectronics Progress, 58, 325-332(2021).
[15] YANG R, DONG X, BI Y et al. A method of reducing background fluctuation in tunable diode laser absorption spectroscopy[J]. Optics Communications, 410, 782-786(2018).
[16] YANG R, ZHANG Y. A method of low concentration methane measurement in tunable diode laser absorption spectroscopy and Levenberg-Marquardt algorithm[J]. Optik, 224, 165657(2020).
[17] JIA Junwei, LI Wei, CHAI Hao et al. Gas detection technology algorithm based on TDLAS[J]. Infrared and Laser Engineering, 48, 202-208(2019).
[18] GORDON I E, ROTHMAN L S, HARGREAVES R J et al. The HITRAN2020 molecular spectroscopic database[J]. Journal of Quantitative Spectroscopy and Radiative Transfer, 277, 107949(2022).
[19] ZHANG Z, CHANG J, SUN J et al. Dual-beam antiphase method to improve the WMS measurement limit in long-distance methane detection[J]. Applied Optics, 59, 8217-8223(2020).
[20] YE W, HE L, XIA Z et al. Miniaturized methane detection system based on photoacoustic spectroscopy[J]. Microwave and Optical Technology Letters, 65, 1421-1426(2023).
Get Citation
Copy Citation Text
Haiqin LIU, Rui XU, Zhenxiang WANG, Tianqi ZHAO, Chunliu ZHAO, Yan SHI, Liang CHEN. Near-infrared Methane Gas Detection Technology Based on TDLAS with High Sensitivity[J]. Acta Photonica Sinica, 2024, 53(3): 0330001
Category:
Received: Aug. 3, 2023
Accepted: Sep. 26, 2023
Published Online: May. 16, 2024
The Author Email: Rui XU (ray@cjlu.edu.cn)