Optics and Precision Engineering, Volume. 33, Issue 2, 194(2025)
Adjustable optical path cylindrical multi-pass cell TDLAS system
[1] DAVIS N M, FRANCIS D, HODGKINSON J et al. Compact methane sensor using an integrating sphere and interband cascade laser at 3313 nm[J]. Sensors and Actuators B: Chemical, 389, 133866(2023).
[2] LIU Y, SHANG Q, CHEN L et al. Application of portable CH4 detector based on TDLAS technology in natural gas purification plant[J]. Atmosphere, 14, 13(2023).
[3] 聂伟, 许振宇, 阚瑞峰. 可调谐二极管激光吸收光谱技术测量低温流场水汽露点温度[J]. 光学 精密工程, 26, 1862(2018).
NIE W, XU Z Y, KAN R F et al. Measurement of low water vapor dew-point temperature based on tunable diode laser absorption spectroscopy[J]. Opt. Precision Eng., 26, 1862(2018).
[4] LIU J Y, PAN Y, YAO L et al. Mid-infrared laser absorption spectroscopy CO2 spectrometer[J]. Opt. Precision Eng., 32, 1330-1337(2024).
刘婧怡, 潘越, 姚路. 小型化中红外直接吸收CO2光谱仪[J]. 光学 精密工程, 32, 1330-1337(2024).
[5] WHITE J U. Long optical paths of large aperture[J]. Journal of the Optical Society of America, 32, 285(1942).
[6] SHAO L G, CHEN J J, WANG K Y et al. Highly precise measurement of atmospheric N2O and CO using improved White cell and RF current perturbation[J]. Sensors and Actuators B: Chemical, 352, 130995(2022).
[7] LI Z, ZHANG Q R, WANG Z T et al. A highly sensitive low-pressure TDLAS sensor for detecting dissolved CO and CO2 in transformer insulating oil[J]. Optics & Laser Technology, 174, 110622(2024).
[8] CHERNIN S M, BARSKAYA E G. Optical multipass matrix systems[J]. Applied Optics, 30, 51-58(1991).
[9] 张启磊, 徐学哲, 赵卫雄. Chernin型多通池用于气溶胶消光系数的测量研究[J]. 光学学报, 35, 930001(2015).
ZHANG Q L, XU X Z, ZHAO W X et al. Measurement of aerosol optical properties using a chernin multipass cell[J]. Acta Optica Sinica, 35, 930001(2015).
[10] CHEN Y G, SHE X Y, LIU X et al. Study on carbon monoxide and carbon dioxide measurement system based on chernin optical multipass cell[J]. Modern Information Technology, 3, 8-10, 13(2019).
陈亚歌, 佘新宇, 刘新. 基于Chernin型光学多通池的一氧化碳和二氧化碳测量系统研究[J]. 现代信息科技, 3, 8-10, 13(2019).
[11] BARRY MCMANUS J. Paraxial matrix description of astigmatic and cylindrical mirror resonators with twisted axes for laser spectroscopy[J]. Applied Optics, 46, 472-482(2007).
[12] CHEN J J, WANG G S, LIU K et al. High sensitivity detection of carbon dioxide based on portable cylindrical multi-pass cell[J]. Spectroscopy and Spectral Analysis, 39, 292(2019).
陈家金, 王贵师, 刘锟. 基于便携式柱面镜多通池的二氧化碳高灵敏度探测研究[J]. 光谱学与光谱分析, 39, 292(2019).
[13] HERRIOTT D, KOGELNIK H, KOMPFNER R. Off-axis paths in spherical mirror interferometers[J]. Applied Optics, 3, 523(1964).
[14] SUN H Y, MA Y F, HE Y et al. Highly sensitive acetylene detection based on a compact multi-pass gas cell and optimized wavelength modulation technique[J]. Infrared Physics & Technology, 102, 103012(2019).
[15] LI G L, WU Y H, ZHANG Z C et al. WMS based dual-range real-time trace sensor for ethane detection in exhaled breath[J]. Optics and Lasers in Engineering, 159, 107222(2022).
[16] DONG M, ZHENG C T, YAO D et al. Double-range near-infrared acetylene detection using a dual spot-ring Herriott cell (DSR-HC)[J]. Optics Express, 26, 12081-12091(2018).
[17] CUI R Y, DONG L, WU H P et al. Calculation model of dense spot pattern multi-pass cells based on a spherical mirror aberration[J]. Optics Letters, 44, 1108-1111(2019).
[18] WEBSTER C R, FLESCH G J, BRIGGS R M et al. Herriott cell spot imaging increases the performance of tunable laser spectrometers[J]. Applied Optics, 60, 1958-1965(2021).
[19] MCMANUS J B, KEBABIAN P L, ZAHNISER M S. Astigmatic mirror multipass absorption cells for long-path-length spectroscopy[J]. Applied Optics, 34, 3336-3348(1995).
[20] LI C L, GUO X Q, JI W H et al. Etalon fringe removal of tunable diode laser multi-pass spectroscopy by wavelet transforms[J]. Optical and Quantum Electronics, 50, 275(2018).
[21] ZHANG H, WANG L, ZOU C H et al. Simulation of signal denoising methods in TDLAS system[J]. Laser Journal, 43, 31-38(2022).
张浩, 王玲, 邹彩虹. TDLAS系统中信号降噪方法的仿真分析[J]. 激光杂志, 43, 31-38(2022).
[22] YAO X Y, ZHOU Q Z, WANG C et al. An adaptive seismic signal denoising method based on variational mode decomposition[J]. Measurement, 177, 109277(2021).
[23] ZHANG R L, TU X H. Variational mode decomposition and wavelet threshold function de-noising for second harmonics[J]. Acta Optica Sinica, 42(2022).
张瑞林, 涂兴华. 二次谐波的变分模态分解和小波阈值函数降噪[J]. 光学学报, 42(2022).
[24] 姜静. 基于SSA-VMD的激光甲烷探测信号去噪研究[D](2024).
JIANG J.
[25] 唐奇超, 王强, 洪志明. 基于改进VMD算法的TDLAS甲烷检测信号降噪研究[J]. 中国计量大学学报, 35, 35-42(2024).
TANG Q C, WANG Q, HONG Z M et al. Research on TDLAS methane detection signal denoising based on improved VMD algorithms[J]. Journal of China University of Metrology, 35, 35-42(2024).
[26] 曾维银, 刘星宇, 缪雨曦. 基于INGO-VMD-改进小波阈值算法的TDLAS二次谐波信号去噪研究[J]. 激光杂志, 45, 53-61(2024).
ZENG W Y, LIU X Y, MIAO Y X et al. TDLAS second harmonic signal denoising research based on INGO-VMD-improved wavelet thresholding algorithm[J]. Laser Journal, 45, 53-61(2024).
[27] SILVER J A. Simple dense-pattern optical multipass cells[J]. Applied Optics, 44, 6545-6556(2005).
[28] SHEN C, ZHANG Y J, NI J Z. Compact cylindrical multipass cell for laser absorption spectroscopy[J]. Chinese Optics Letters, 11, 91201-91205(2013).
[29] MCMANUS J B. Paraxial matrix description of astigmatic and cylindrical mirror resonators with twisted axes for laser spectroscopy[J]. Applied Optics, 46, 472-482(2007).
[30] DRAGOMIRETSKIY K, ZOSSO D. Variational mode decomposition[J]. IEEE Transactions on Signal Processing, 62, 531-544(2014).
[31] DEHGHANI M, HUBÁLOVSKÝ Š, TROJOVSKÝ P. Northern goshawk optimization: a new swarm-based algorithm for solving optimization problems[J]. IEEE Access, 9, 162059-162080(2021).
[32] NIU R X.
牛瑞兴. 基于可调谐半导体激光吸收光谱的温度实时监测方法研究[D](2022).
[33] SHI Y P, HU Z, NIU M S et al. High-sensitive double incidence multi-pass cell for trace gas detection based on TDLAS[J]. Sensors and Actuators B: Chemical, 412, 135829(2024).
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Taohua LI, Mingsheng NIU, Yongpeng SHI, Hui LI, Huiyuan LIU, Le YANG, Haotian YUAN, Hongfu FANG. Adjustable optical path cylindrical multi-pass cell TDLAS system[J]. Optics and Precision Engineering, 2025, 33(2): 194
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Received: Nov. 6, 2024
Accepted: --
Published Online: Apr. 30, 2025
The Author Email: Mingsheng NIU (qsdmsniu@qfnu.edu.cn)