考虑多重散射的星载激光雷达脉冲在卷云中传播的统计模拟

IF 0.9 Q4 OPTICS
T. V. Russkova, V. A. Shishko
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引用次数: 0

摘要

卷云激光遥感存在着考虑辐射多重散射的问题,影响了测量解译的可靠性。估算了星载激光雷达的多次散射对回波信号的贡献。利用蒙特卡罗方法求解了激光脉冲在具有散射多重度分离的连续卷云中传播的非稳态问题,计算了云的光学和微观结构特征(光学厚度、冰粒的形状和大小)和激光雷达参数(与传感物体的距离、光束发散度和接收器的视场)的不同值。数值实验考虑了已运行或有发展前景的星载激光雷达系统的参数允许范围。讨论了在大气模式中引入气溶胶和瑞利粒子以及下垫云层后向信号的形成特征。仿真结果表明,回波信号部分由于多次散射辐射对研究参数的高灵敏度,在制定和求解反问题时应考虑到这一点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Statistical Simulation of Spaceborne Lidar Pulse Propagation in Cirrus Clouds Taking into Account Multiple Scattering

Statistical Simulation of Spaceborne Lidar Pulse Propagation in Cirrus Clouds Taking into Account Multiple Scattering

Laser remote sensing of cirrus clouds is accompanied by the problem of taking into account the multiple scattering of radiation, which influences the reliability of measurement interpretation. The contribution of multiple scattering of radiation to echo signals of a spaceborne lidar is estimated. The nonstationary problem of laser pulse propagation in continuous cirrus clouds with separation by scattering multiplicities is solved by the Monte Carlo method at different values of the optical and microstructural characteristics of clouds (optical thickness and shape and size of ice particles) and lidar parameters (distance from the sensing object, beam divergence, and field of view of the receiver). Numerical experiments were carried out taking into account the permissible range of the parameters for operational or promising spaceborne lidar systems. The features of the formation of the backward signal when aerosol and Rayleigh particles, as well as the underlying cloud layer, are introduced into the atmospheric model are discussed. The simulation results indicate the high sensitivity of the echo signal part caused by multiply scattered radiation to the parameters under study, which should be taken into account when formulating and solving inverse problems.

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来源期刊
CiteScore
2.40
自引率
42.90%
发文量
84
期刊介绍: Atmospheric and Oceanic Optics  is an international peer reviewed journal that presents experimental and theoretical articles relevant to a wide range of problems of atmospheric and oceanic optics, ecology, and climate. The journal coverage includes: scattering and transfer of optical waves, spectroscopy of atmospheric gases, turbulent and nonlinear optical phenomena, adaptive optics, remote (ground-based, airborne, and spaceborne) sensing of the atmosphere and the surface, methods for solving of inverse problems, new equipment for optical investigations, development of computer programs and databases for optical studies. Thematic issues are devoted to the studies of atmospheric ozone, adaptive, nonlinear, and coherent optics, regional climate and environmental monitoring, and other subjects.
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