激光与光电子学进展, 2018, 55 (11): 110103, 网络出版: 2019-08-14   

可见光在不同类型气溶胶中的传输特性 下载: 1151次

Transmission Characteristics of Visible Light in Different Types of Aerosols
作者单位
火箭军工程大学理学院, 陕西 西安 710025
引用该论文

孙琦云, 徐军, 高旸, 王婷. 可见光在不同类型气溶胶中的传输特性[J]. 激光与光电子学进展, 2018, 55(11): 110103.

Qiyun Sun, Jun Xu, Yang Gao, Ting Wang. Transmission Characteristics of Visible Light in Different Types of Aerosols[J]. Laser & Optoelectronics Progress, 2018, 55(11): 110103.

参考文献

[1] 饶瑞中. 现代大气光学及其应用[J]. 大气与环境光学学报, 2006, 1(4): 2-13.

    Rao R Z. Modern atmospheric optics and its applications[J]. Journal of Atmospheric and Environmental Optics, 2006, 1(4): 2-13.

[2] 刘吉, 陈长和. 兰州城区冬季大气气溶胶粒子谱的反演研究[J]. 高原气象, 2004, 23(1): 103-109.

    Liu J, Chen C H. A study on remote-sensing inversion of atmospheric aerosol particle size distributions of Lanzhou city in winter[J]. Plateau Meteorol, 2004, 23(1): 103-109.

[3] 毛节泰, 张军华, 王美华. 中国大气气溶胶研究综述[J]. 气象学报, 2002, 60(5): 625-634.

    Mao J T, Zhang J H, Wang M H. Summary comment on research of atmospheric aerosol in china[J]. Acta Meteorologica Sinica, 2002, 60(5): 625-634.

[4] 韩永, 王体健, 饶瑞中, 等. 大气气溶胶物理光学特性研究进展[J]. 物理学报, 2008, 57(11): 7396-7407.

    Han Y, Wang T J, Rao R Z, et al. Progress in the study of physic-optics characteristics of atmospheric aerosols[J]. Acta Physica Sinica, 2008, 57(11): 7396-7407.

[5] 宫纯文, 李学彬, 李建玉, 等. 大气气溶胶消光系数测量新方法[J]. 光学学报, 2014, 34(1): 0101001.

    Gong C W, Li X B, Li J Y, et al. New method of aerosol extinction coefficient measurement[J]. Acta Optica Sinica, 2014, 34(1): 0101001.

[6] Erlick C, Frederick J E. Effects of aerosols on the wavelength dependence of atmospheric transmission in the ultraviolet and visible: 2. continental and urban aerosols in clear skies[J]. Journal of Geophysical Research: Atmospheres, 1998, 103(D18): 23275-23285.

[7] KoschmiederH. Theorie der horizontalen Sichtweite[M]. Munich: Keim & Nemnich, 1924: 33- 53.

[8] Antoine D, Morel A. Relative importance of multiple scattering by air molecules and aerosols in forming the atmospheric path radiance in the visible and near-infrared parts of the spectrum[J]. Applied Optics, 1998, 37(12): 2245-2259.

[9] Kuzmin V L, Meglinski I V. Coherent multiple scattering effects and Monte Carlo method[J]. Journal of Experimental and Theoretical Physics Letters, 2004, 79(3): 109-112.

[10] 王建岗, 王桂英, 徐至展. 散射介质中光传输行为时间特性的蒙特卡洛模拟研究[J]. 光学学报, 2001, 21(2): 155-157.

    Wang J G, Wang G Y, Xu Z Z. Monte Carlo simulations for time characteristics of light propagation in scattering medium[J]. Acta Optica Sinica, 2001, 21(2): 155-157.

[11] 程文, 李俊山, 余宁, 等. 红外辐射在烟幕中的蒙特卡洛模拟[J]. 红外技术, 2010, 32(11): 672-675, 680.

    Cheng W, Li J S, Yu N, et al. Monte Carlo simulation of infrared radiation through smoke screen[J]. Infrared Technology, 2010, 32(11): 672-675,680.

[12] GrabnerM, KviceraV. Simulation of multiple scattering effect in atmospheric hydrometeors by Monte Carlo method[C]∥European Conference on Antennas and Propagation, April 8-12, Gothenburg, Sweden. New York: IEEE, 2013: 2522- 2525.

[13] 王红霞, 竹有章, 田涛. 等 . 激光在不同类型气溶胶中传输特性研究[J]. 物理学报, 2013, 62(2): 024214.

    Wang H X, Zhu Y Z, Tian T, et al. Characteristics of laser transmission in different types of aerosols[J]. Acta Physica Sinica, 2013, 62(2): 024214.

[14] Wallace JM, Hobbs PV. Atmospheric science: an introductory survey[M]. Netherland: Elsevier, 1977.

[15] Bohren C F, Clothiaux E E, Johnson N D. Fundamentals of atmospheric radiation[J]. American Journal of Physics, 2007, 75(75): 671-672.

[16] Liou KN. An introduction to atmospheric radiation[M]. Netherland: Elsevier, 2002.

[17] 宋秀瑜, 曹念文, 杨思鹏. 探究影响南京地区大气气溶胶光学特性反演的因素[J]. 激光与光电子学进展, 2017, 54(4): 040101.

    Song X Y, Cao N W, Yang S P. Influence factors on atmospheric aerosol optical property inversion in nanjing[J]. Laser & Optoelectronics Progress, 2017, 54(4): 040101.

[18] 马井会, 张华, 郑有飞, 等. 沙尘气溶胶光学厚度的全球分布及分析[J]. 气候与环境研究, 2007, 12(2): 156-164.

    Ma J H, Zhang H, Zheng Y F, et al. The optical depth global distribution of dust aerosol and its possible reason analysis[J]. Climatic and Environmental Research, 2007, 12(2): 156-164.

[19] 麻晓敏, 张辉, 单会会, 等. 合肥西郊2014年近地面气溶胶后向散射系数廓线统计分布[J]. 中国激光, 2016, 43(7): 0705001.

    Ma X M, Zhang H, Shan H H, et al. Statistical distribution of aerosol backscattering coefficient profiles in near-ground at west suburb of Hefei in 2014[J]. Chinese Journal of Lasers, 2016, 43(7): 0705001.

[20] 类成新, 张化福, 刘汉法. 煤烟气溶胶粒子对太阳辐射的消光特性研究[J]. 光学学报, 2010, 30(12): 3373-3377.

    Lei C X, Zhang H F, Liu H F. Study of extinction characteristics of solar radiation by soot aerosols[J]. Acta Optica Sinica, 2010, 30(12): 3373-3377.

[21] Otsuki S. Multiple scattering in turbid media containing chiral components: a Monte Carlo simulation[J]. Optics Communications, 2017, 382: 157-161.

[22] 张小林. 沙尘气溶胶粒子模型的线退偏比特性[J]. 光学学报, 2016, 36(8): 0829001.

    Zhang X L. Linear depolarization ratios characteristics of dust aerosol particles model[J]. Acta Optica Sinica, 2016, 36(8): 0829001.

孙琦云, 徐军, 高旸, 王婷. 可见光在不同类型气溶胶中的传输特性[J]. 激光与光电子学进展, 2018, 55(11): 110103. Qiyun Sun, Jun Xu, Yang Gao, Ting Wang. Transmission Characteristics of Visible Light in Different Types of Aerosols[J]. Laser & Optoelectronics Progress, 2018, 55(11): 110103.

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