|
|
|
|
|
|
Application of Kalman Filter in Gas Detection by Cavity Ring-Down Spectroscopy |
LI De-hao1, WANG Dan1*, LI Zhi-yan1, CHEN Hao2 |
1.School of Microelectronics and Data Science, Anhui University of Technology, Ma'anshan 243000, China
2. School of Mechanical Engineering, Suzhou University of Science and Technology, Suzhou 215000, China
|
|
|
Abstract Cavity Ring-Down Spectroscopy (CRDS) is a highly sensitive trace gas concentration measurement technique in which the processing of ring-down time is crucial. This paper adopts the Kalman filter to process the cavity ring-down spectroscopy to reduce the measurement error introduced by noise during the collection and real-time measurement process. This method preprocesses with the traditional filtering method to obtain the observation noise covariance σ2v(R) of the Kalman filter parameters, adjusts the process excitation noise covariance σ2w(Q), and evaluates the filtering effect to optimize the measurement results. Using simulated ring-down signals with white noise, the linear regression summation method (LRS) fits the background rendering-downtimesto perform Kalman filtering. From four aspects of mean, standard deviation, residual standard deviation (RMSE), and different noise levels, the appropriate Q value range is obtained, which is less than 1×10-7 and 0.001, respectively. An experimental gas detection system based on CRDS technology is constructed, using a 405 nm center wavelength diode laser and a high-reflectivity mirror with a reflectivity of over 99.99%, with NO2 as the target gas, and the background ring-down time and ring-down time are processed and analyzed using Kalman filtering. The experimental results show that: (1) Selecting a Q value less than 1×10-7 for Kalman filtering of the background ring-down time increases the lowest detection limit by 9.12 times and reaches 4.9×10-11 after filtering; (2) Taking Q value of 0.001 for processing the ring-down time retains the time response information and achieves significant noise reduction; (3) The system's time resolution is 1 s, and compared to the method of reducing time resolution to improve detection limit in the past, the Kalman filtering method improves the system's sensitivity. The agreement between experimental and simulated results verifies the effectiveness of Kalman filtering in stability and noise reduction. Applying the Kalman filtering method in the CRDS spectroscopic detection of gases is practical and provides methods and references for optimizing other gas measurement results.
|
Received: 2023-07-21
Accepted: 2023-10-20
|
|
Corresponding Authors:
WANG Dan
E-mail: wangdan5@ahut.edu.cn
|
|
[1] Maity A, Maithani S, Pradhan M. Analytical Chemistry, 2020, 93(1): 388.
[2] Berden G, Peeters R, Meijer G. International Reviews in Physical Chemistry, 2000, 19(4): 565.
[3] LIU Wen-qing, WANG Xing-ping, MA Guo-sheng, et al(刘文清, 王兴平, 马国盛, 等). Acta Optica Sinica(光学学报), 2021, 41(1): 434.
[4] ZHANG Zhi-rong, XIA Hua, SUN Peng-shuai, et al(张志荣,夏 滑,孙鹏帅,等). Acta Photonica Sinica(光子学报), 2023, 52(3): 0352108.
[5] Wang D, Xie P, Hu R, et al. Atmosphere, 2022, 13(8): 1268.
[6] ( Cˇ )ermák P, Chomet B, Ferrieres L, et al. Review of Scientific Instruments, 2016, 87(8): 083109.
[7] Long D A, Fleisher A J, Wojtewicz S, et al. Applied Physics B, 2014, 115: 149.
[8] Li J, Yu B, Zhao W, et al. Applied Spectroscopy Reviews, 2014, 49(8): 666.
[9] Welch G F. Kalman Filter. In: Computer Vision. Springer, 2021.
[10] Montgomery D D, Kalman D A. Applied Industrial Hygiene, 1989, 4(1): 17.
[11] SHEN Xiao-yan, BI Zhi-hui, LIU Hua-feng(沈小燕, 毕智慧, 刘华锋). Opto-Electronic Engineering(光电工程), 2008, 35(12): 54.
[12] De Ridder K, Kumar U, Lauwaet D, et al. Atmospheric Environment, 2012, 50: 381.
[13] LI Jin-yi, YANG Xue, ZHANG Chen-ge,et al(李金义, 杨 雪, 张宸阁,等). Acta Optica Sinica(光学学报), 2022, 42(18): 207.
[14] HU Ren-zhi, WANG Dan, XIE Pin-hua, et al(胡仁志,王 丹,谢品华,等). Acta Physica Sinica(物理学报), 2014, 63(11): 110707.
[15] Wang D, Hu R Z, Xie P H, et al. Journal of Quantitative Spectroscopy & Radiative Transfer, 2015, 166: 23.
[16] Brown S S, Stark H, Ravishankara A R. Applied Physics B, 2002, 75(2-3): 173.
[17] Leleux D P, Claps R, Chen W, et al. Applied Physics B, 2002, 74: 85.
[18] ZHAO Gang, MA Wei-guang, LI Zhi-xin, et al(赵 刚, 马维光, 李志新, 等). Chinese Patent(中国专利):CN103884679B, 2016.
[19] Welch G, Bishop G. Proc of SIGGRAPH, Course, 2001, 8(27599-23175): 41.
[20] Daley R, Ménard R. Monthly Weather Review, 1993, 121(5): 1554.
[21] Mehra R K. IEEE Transactions on Automatic Control, 1970, 15(2): 175.
[22] Almagbile A, Wang J, Ding W. Journal of Global Positioning Systems, 2010, 9(1): 33.
[23] WANG Dan, HU Ren-zhi, XIE Pin-hua, et al(王 丹, 胡仁志, 谢品华, 等). Spectroscopy and Spectral Analysis(光谱学与光谱分析), 2014, 34(10): 2845.
|
[1] |
KAN Ling-ling, ZHU Fu-hai, LIANG Hong-wei*. Detection of Trace Methane Gas Concentration Based on 1D-WCWKCNN[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2024, 44(03): 829-835. |
[2] |
LIU Zhao-hai1, AN Xin-chen1, 3, TAO Zhi1, 2, LIU Xiang1, 2*. Multicomponent Trace Gas Detecting and Identifying System Based on MEMS-FPI on-Chip Spectral Device[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2024, 44(02): 359-366. |
[3] |
ZHENG Hong-quan, DAI Jing-min*. Research Development of the Application of Photoacoustic Spectroscopy in Measurement of Trace Gas Concentration[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2024, 44(01): 1-14. |
[4] |
BAI Bing1, 2, 3, CHEN Guo-zhu2, 3, YANG Wen-bin2, 3, CHE Qing-feng2, 3, WANG Lin-sen2, 3, SUN Wei-min1*, CHEN Shuang1, 2, 3*. The Study on Precise and Quantitative Measurement of Flame OHConcentration by CRDS-CARS-PLIF Techniques[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2023, 43(12): 3955-3962. |
[5] |
WANG Yu-hao1, 2, LIU Jian-guo1, 2, XU Liang2*, DENG Ya-song2, SHEN Xian-chun2, SUN Yong-feng2, XU Han-yang2. Application of Principal Component Analysis in Processing of Time-Resolved Infrared Spectra of Greenhouse Gases[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2023, 43(07): 2313-2318. |
[6] |
NING Qian-qian, YANG Jia-hao, LIU Xiao-lin, HE Yu-han, HUANGFU Zhi-chao, YU Wen-jing, WANG Zhao-hui*. Design and Study of Time-Resolved Femtosecond Laser-Induced
Breakdown Spectroscopy[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2023, 43(04): 1083-1087. |
[7] |
LIU Ting-ting1, SHEN Xu-ling1, REN Xin-yi1, WEN Zhao-yang1, YAN Ming1, 2, ZENG He-ping1, 2*. Decomposition Products Detection of Sulfur Hexafluoride Based on
Frequency Comb Spectroscopy[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2023, 43(03): 927-932. |
[8] |
YANG Jin-chuan1, 2, AN Jing-long1, 2, LI Cong3, ZHU Wen-chao3*, HUANG Bang-dou4*, ZHANG Cheng4, 5, SHAO Tao4, 5. Study on Detecting Method of Toxic Agent Containing Phosphorus
(Simulation Agent) by Optical Emission Spectroscopy of
Atmospheric Pressure Low-Temperature Plasma[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(06): 1728-1734. |
[9] |
WANG Qi, WANG Shi-chao, LIU Tai-yu, CHEN Zi-qiang. Research Progress of Multi-Component Gas Detection by Photoacoustic Spectroscopy[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(01): 1-8. |
[10] |
CHEN Yang, DAI Jing-min*, WANG Zhen-tao, YANG Zong-ju. A Near-Infrared TDLAS Online Detection Device for Dissolved Gas in Transformer Oil[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2021, 41(12): 3712-3716. |
[11] |
HE Ya-xiong1, ZHOU Wen-qi1, KE Chuan2, XU Tao1*, ZHAO Yong1, 2. Review of Laser-Induced Breakdown Spectroscopy in Gas Detection[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2021, 41(09): 2681-2687. |
[12] |
CHEN Dong-yang1, ZHOU Li1*, YANG Fu-mo1, WANG Wei-gang2, GE Mao-fa2. Application Progress of Cavity-Enhanced Absorption Spectroscopy (CEAS) in Atmospheric Environment Research[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2021, 41(09): 2688-2695. |
[13] |
REN Xue-zhi1, HE Peng1, 2*, LONG Zou-rong1, GUO Xiao-dong1, AN Kang2, LÜ Xiao-jie1, WEI Biao1, 2, FENG Peng1, 2*. Research on Spectral CT Image Denoising Via Fully Convolution Pyramid Residual Network[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2021, 41(09): 2950-2955. |
[14] |
LI Qing-yuan, LI Jing, WEI Xin, SUN Mei-xiu*. Performance Evaluation of a Portable Breath Isoprene Analyzer Based on Cavity Ringdown Spectroscopy[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2021, 41(08): 2415-2419. |
[15] |
LI Qian, HAN Yan-li, NING Ri-bo, YUAN Bei, WANG Hao-nan, XU Song-ning*. LIBS Detection of Copper in Water Based on Gelatin Hydrogel Curing Method[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2021, 41(05): 1537-1542. |
|
|
|
|