Detection of Benzene Concentration by Mid-Infrared Differential Absorption Lidar

被引:2
|
作者
Duan Ming-xuan [1 ]
Li Shi-chun [1 ,2 ]
Liu Jia-hui [1 ]
Wang Yi [1 ]
Xin Wen-hui [1 ,2 ]
Hua Deng-xin [1 ,2 ]
Gao Fei [1 ,2 ]
机构
[1] Xian Univ Technol, Sch Mech & Precis Instrument Engn, Xian 710048, Peoples R China
[2] Shaanxi Collaborat Innovat Ctr Modern Equipment G, Xian 710048, Peoples R China
关键词
Mid-infrared spectroscopy; Lidar; Differential absorption spectrum; Benzene concentration;
D O I
10.3964/j.issn.1000-0593(2023)11-3351-09
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
Benzene is an important component of volatile organic compounds (VOCs), and its pollution of the atmosphere has attracted increasing attention. The mid-infrared band is usually the fundamental frequency fingerprint absorption region of molecules, so it has become an important band for detecting trace gas molecules. Moreover, the differential absorption lidar is an important means of detecting atmospheric trace gases. Therefore, aiming at the problem of real-time remote sensing of regional benzene concentration, an integral path differential absorption (IPDA) lidar for detecting atmospheric benzene concentration based on inter-band cascade lasers (ICLs) is proposed. Firstly, we construct the retrieval algorithm of IPDA lidar and its error analysis model based on analyzing the detection principle of IPDA lidar. Secondly, the absorption spectra of benzene and major interfering gases (such as HCl, CH4 and H2O) near the mid-infrared vicinity region of 3 100 cm i from the HITRAN database are analyzed in detail. By considering comprehensively the influence of HCl, CH4 and H-2 on the detection results, the measurement wavelength and reference wavelength of the IPDA lidar are selected to be 3 090. 89 and 3 137. 74 cm(-1) respectively. Thirdly, we designed an IPDA lidar for detecting atmospheric benzene concentration based on two continuous-wave ICLs. The output wavelengths of these ICLs can be tuned by controlling the temperature and driving curren, so that their wavelengths can be stabilized in the strong absorption spectrum region and the weak absorption spectrum region respectively. And then, a spectroscopic system with a mid-infrared diffraction grating as the core is designed to realize synchronous detection of dual-wavelength receiving signals. Finally, combined with the mid-latitude standard atmospheric model, the performance of lidar under the conditions of different visibilities, path lengths, and water vapor concentrations is analyzed and discussed. And then, we carry out test experiments by building a mid-infrared band detection gas cell to verify the feasibility of the IPDA lidar. These results from simulations and experiments show that the relative error of benzene concentration is less than 10% within the concentration-path length product (CL) range of 0.1 similar to 24 mg center dot m(3) center dot km, and the relative error of detection is better than 1%0, while the CL of benzene is 5 mg center dot m(3) center dot km, under the condition of atmospheric visibility of 5 km, and the water vapor concentration of less than 0. 4%; and that the linear correlation coefficient R-2 of differential absorption lidar detection in the midinfrared band is about 98. 7% by preliminary experiments.
引用
收藏
页码:3351 / 3359
页数:9
相关论文
共 16 条
  • [1] One-year measurements of toxic benzene concentrations in the ambient air of Greece: An estimation of public health risk
    Begou, Paraskevi
    Kassomenos, Pavlos
    [J]. ATMOSPHERIC POLLUTION RESEARCH, 2020, 11 (10) : 1829 - 1838
  • [2] Chan CHEN, 2018, Infrared and Laser Engineering, V47
  • [3] Cheng Y, Applied Opties, P9087
  • [4] Interband Cascade Lasers Based Trace Gas Sensing: A Review
    Du Zhenhui
    Han Ruiyan
    Wang Xiaoyu
    Wang Shuangke
    Mengshuo
    Li Jinyi
    [J]. CHINESE JOURNAL OF LASERS-ZHONGGUO JIGUANG, 2018, 45 (09):
  • [5] Gao ze CAI, 2019, Acta Phtonica Sinica, V48
  • [6] High Repetition Rate Mid-Infrared Differential Absorption Lidar for Atmospheric Pollution Detection
    Gong, Yu
    Bu, Lingbing
    Yang, Bin
    Mustafa, Farhan
    [J]. SENSORS, 2020, 20 (08)
  • [7] Hau CY, 2022, Chemosphere, V301
  • [8] Kardi YE, 2021, Spentroscopy and Spectral Analysis, V41, P3007
  • [9] Remote sensing of atmospheric NO2 by employing the continuous-wave differential absorption lidar technique
    Mei, Liang
    Guan, Peng
    Kong, Zheng
    [J]. OPTICS EXPRESS, 2017, 25 (20): : A953 - A962
  • [10] Differential absorption lidar system employed for background atomic mercury vertical profiling in South China
    Mei, Liang
    Zhao, Guangyu
    Svanberg, Sune
    [J]. OPTICS AND LASERS IN ENGINEERING, 2014, 55 : 128 - 135