• Infrared and Laser Engineering
  • Vol. 44, Issue 3, 872 (2015)
[in Chinese]1、2、*, [in Chinese]1, [in Chinese]1, [in Chinese]1, [in Chinese]1, [in Chinese]1, [in Chinese]1, and [in Chinese]1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    DOI: Cite this Article
    [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. Experiment study of SO2 measurement by differential absorption lidar[J]. Infrared and Laser Engineering, 2015, 44(3): 872 Copy Citation Text show less
    References

    [1] Liu Qi. Environmental Chemistry [M]. Beijing: Chemical Industry Press, 2006. (in Chinese)

    [2] Tang Xiaoyan, Li Jinlong, Li Xin, et al. Atmosphere Environmental Chemistry [M]. Beijing: Higher Education Press, 1990. (in Chinese)

    [3] Schotland R M. Some observations of the vertical profile of water vapor by a laser optical radar[C]//Proceedings of the 4th Symposium on Remote Sensing of Environment, 1966.

    [4] Fredriksson K, Galle B, Nystrom K, et al. Mobile lidar system for environmental probing [J]. Applied Optics, 1981, 20(24): 4181-4189.

    [5] Goers U B. Laser remote sensing of sulfur dioxide and ozone with the mobile differential absorption lidar [J]. Optical Engineering, 1995, 34(11): 3097-3102.

    [6] Fujii T, Fukuchi T, Goto N, et al. Dual differential absorption lidar for the measurement of atmospheric SO2 of the order of parts in 109 [J]. Applied Optics, 2001, 40(6): 949-956.

    [7] Hu Shunxing, Hu Huanling, Zhang Yinchao, et al. Differential absorption lidar for environmental SO2 measurements [J]. Chinese Journal of Lasers, 2004, 31(9): 1121-1126. (in Chinese)

    [8] Weitkamp C. Lidar Range Resolved Optical Remote Sensing of the Atmosphere [M]. New York: Springer-Verlag New York Inc., 2005.

    [9] Sun Jingqun. Lidar Atmospheric Detection [M]. Beijing: Science Press, 1986. (in Chinese)

    [10] Vandaele A C, Hermans C, Fally S. Fourier transform measurements of SO2 absorption cross sections: II. temperature dependence in the 29 000-44 000 cm-1(227-345 nm) region [J]. Journal of Quantitative Spectroscopy and Radiative Transfer, 2009, 110(18): 2115-2126.

    [11] Liu Zhaoyan, Hunt W, Vaughan M, et al. Estimating random errors due to shot noise in backscatter lidar observations [J]. Applied Optics, 2006, 45(18): 4437-4447.

    [12] Sasano Y, Kobayashi T. Feasibility study on space lidars for measuring global atmospheric environment [R]. Japan: NIES, 1995.

    [13] Uchino O, Tabata I. Mobile lidar for simultaneous measurements of ozone, aerosols, and temperature in the stratosphere [J]. Applied Optics, 1991, 30(15): 2005-2012.

    [14] Serdyuchenko A, Gorshelev V, Weber M, et al. New broadband high-resolution ozone absorption cross-sections [J]. Spectroscopy of Europe, 2011, 23(6): 3.

    [15] Voigt S, Orphal J, Burrows J P. The temperature and pressure dependence of the absorption cross-sections of NO2 in the 250~800 nm region measured by Fourier-transform spectroscopy [J]. Journal of Photochemistry and Photobiology Chemistry, 2002, 149(1-3): 1-7.

    CLP Journals

    [1] Deng Pan, Zhang Tianshu, Chen Wei, Liu Jianguo, Liu Yang. Estimating noise scale factor and SNR of atmospheric lidar[J]. Infrared and Laser Engineering, 2016, 45(s1): 130003

    [2] Liu Qiuwu, Wang Xiaobin, Chen Yafeng, Cao Kaifa, Hu Shunxing, Huang Jian. Detection of Atmospheric NO2 Concentration by Differential Absorption Lidar Based on Dye Lasers[J]. Acta Optica Sinica, 2017, 37(4): 428004

    [3] Li Liucheng, Duo Liping, Wang Yuanhu, Tang Shukai, Yu Haijun, Ma Yanhua, Zhang Zhiguo, Jin Yuqi, Gong Deyu. Cavity enhanced absorption spectroscopy measurements for chemical lasers[J]. Infrared and Laser Engineering, 2017, 46(2): 239003

    [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. Experiment study of SO2 measurement by differential absorption lidar[J]. Infrared and Laser Engineering, 2015, 44(3): 872
    Download Citation