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基于激光雷达退偏振比的卷云中粒子有效形状比分类

Classification of particle effective shape ratios in cirrus clouds based on the lidar depolarization ratio.

作者信息

Noel Vincent, Chepfer Helene, Ledanois Guy, Delaval Arnaud, Flamant Pierre H

机构信息

Laboratoire de Météorologie Dynamique, Ecole Polytechnique, Pasaiseau, France.

出版信息

Appl Opt. 2002 Jul 20;41(21):4245-57. doi: 10.1364/ao.41.004245.

Abstract

A shape classification technique for cirrus clouds that could be applied to future spaceborne lidars is presented. A ray-tracing code has been developed to simulate backscattered and depolarized lidar signals from cirrus clouds made of hexagonal-based crystals with various compositions and optical depth, taking into account multiple scattering. This code was used first to study the sensitivity of the linear depolarization rate to cloud optical and microphysical properties, then to classify particle shapes in cirrus clouds based on depolarization ratio measurements. As an example this technique has been applied to lidar measurements from 15 mid-latitude cirrus cloud cases taken in Palaiseau, France. Results show a majority of near-unity shape ratios as well as a strong correlation between shape ratios and temperature: The lowest temperatures lead to high shape ratios. The application of this technique to space-borne measurements would allow a large-scale classification of shape ratios in cirrus clouds, leading to better knowledge of the vertical variability of shapes, their dependence on temperature, and the formation processes of clouds.

摘要

本文提出了一种可应用于未来星载激光雷达的卷云形状分类技术。已开发出一种光线追踪代码,用于模拟由具有各种成分和光学厚度的六方晶体构成的卷云的后向散射和去极化激光雷达信号,并考虑了多次散射。该代码首先用于研究线性去极化率对云光学和微物理特性的敏感性,然后基于去极化率测量对卷云中的粒子形状进行分类。作为示例,该技术已应用于法国帕莱索采集的15个中纬度卷云案例的激光雷达测量。结果显示,大多数形状比接近1,并且形状比与温度之间存在很强的相关性:温度越低,形状比越高。将该技术应用于星载测量将能够对卷云中的形状比进行大规模分类,从而更好地了解形状的垂直变异性、它们对温度的依赖性以及云的形成过程。

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