Volume 43 Issue 10
Nov.  2014
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Tao Zongming, Liu Dong, Ma Xiaomin, Chen Xiangchun, Wang Zhenzhu, Xie Chenbo, Wang Yingjian. Development and case study of side-scatter lidar system based on charge-coupled device[J]. Infrared and Laser Engineering, 2014, 43(10): 3282-3286.
Citation: Tao Zongming, Liu Dong, Ma Xiaomin, Chen Xiangchun, Wang Zhenzhu, Xie Chenbo, Wang Yingjian. Development and case study of side-scatter lidar system based on charge-coupled device[J]. Infrared and Laser Engineering, 2014, 43(10): 3282-3286.

Development and case study of side-scatter lidar system based on charge-coupled device

  • Received Date: 2014-02-10
  • Rev Recd Date: 2014-03-15
  • Publish Date: 2014-10-25
  • The backscatter lidar technique is widely applied to atmospheric aerosol detection, but the blind and transition regions restrict its detecting range and precision in near distance. Side-scatter lidar technique without above shortage can detect aerosol continuously in near distance, and has good precision. A side-scatter lidar system was developed, which is composed of transmitter, receiver, geometric calibration, and data acquisition subsystems. Comparison experiment with backscatter lidar indicates that the data acquired from this lidar are reliable and the near detection effective range is from 0.02-4 km. This system can be used for study the spatio-temporal distribution of atmospheric aerosol in near surface further.
  • [1] Shi Guangyu, Wang Biao, Zhang Hua, et al. The radiative and climatic effects of atmospheric aerosols[J]. Chinese Journal of Atmospheric Sciences, 2008, 32(4): 826-840. (in Chinese) 石广玉, 王标, 张华, 等. 大气气溶胶的辐射与气候效应[J]. 大气科学, 2008, 32(4): 826-840.
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    [4] Ding Hongxing, Dai Lili, Sun Dongsong. Spatial distribution of aerosol in troposphere measured by lidar at slant range[J]. Infrared and Laser Engineering, 2010, 39(3): 442-446. (in Chinese) 丁红星, 戴丽莉, 孙东松. 激光雷达斜程探测的对流层气溶胶空间分布[J]. 红外与激光工程, 2010, 39(3): 442-446.
    [5] Dong Yunsheng, Liu Wenqing, Liu Jianguo, et al. Lidar study of the aerosol characteristic in Beijing during traffic controlled[J]. Acta Optica Sinica, 2009, 29(2): 14-18. (in Chinese) 董云升, 刘文清, 刘建国, 等. 北京城区限车期间气溶胶特征激光雷达观测研究[J]. 光学学报, 2009, 29(2): 14-18.
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    [8] Chen Min,Sun Dongsong,Gu Jiang, et al. Two-dimensional distribution of aerosol measured by lidar[J]. Infrared and Laser Engineering, 2007, 36(3): 369-372. (in Chinese) 陈敏, 孙东松, 顾江, 等. 激光雷达探测的大气气溶胶空间二维分布[J]. 红外与激光工程, 2007, 36(3): 369-372.
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    [10] Mao F, Gong W, Li J. Geometrical form factor calculation using Monte Carlo integration for lidar[J]. Optics Laser Technology, 2012, 44(40): 907-912.
    [11] Bernes J E, Bronner S, Beck R, et al. Boundary layer scattering measurements with a charge-coupled device camera lidar[J]. Appl Opt, 2003, 42(15): 2647-2652.
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    [13] Bernes J E, Parikh Sharma N C, Kaplan T B. Atmospheric aerosol profiling with a bistatic imaging lidar system[J]. Appl Opt, 2007, 46(15): 2922-2929.
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Development and case study of side-scatter lidar system based on charge-coupled device

  • 1. Section of Physics T&R,Department of Basic Sciences,Army Officer Academy,Hefei 230031,China;
  • 2. Key Laboratory of Atmospheric Composition and Optical Radiation,Anhui Institute of Optics and Fine Mechanics,Chinese Academy of Sciences,Hefei 230031,China

Abstract: The backscatter lidar technique is widely applied to atmospheric aerosol detection, but the blind and transition regions restrict its detecting range and precision in near distance. Side-scatter lidar technique without above shortage can detect aerosol continuously in near distance, and has good precision. A side-scatter lidar system was developed, which is composed of transmitter, receiver, geometric calibration, and data acquisition subsystems. Comparison experiment with backscatter lidar indicates that the data acquired from this lidar are reliable and the near detection effective range is from 0.02-4 km. This system can be used for study the spatio-temporal distribution of atmospheric aerosol in near surface further.

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