The method of retrieving aerosol extinction coefficient by ultraviolet lidar

Hui Zhang, H. Shan, Xiaomin Ma, Kai-fa Cao, Shenhao Wang, Shaoqing Zhao, Changjiang Zhang, Z. Tao
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Abstract

Aerosol is the main component of air pollutants. Lidar is a powerful tool to detect atmospheric aerosols. 355 nm in ultraviolet, visible spectrum and 1064 nm in near infrared are commonly used in detection, while the ultraviolet spectrum with wavelength less than 320 nm is less used. The main reason is that ozone has a certain content in the atmosphere and is strongly absorbed in the ultraviolet spectrum. Retrieving aerosol extinction coefficient from ultraviolet lidar equation is more complex than from 355 nm, visible spectrum and 1064 nm lidar equation because of the interaction of aerosol absorption, ozone absorption and atmospheric molecular absorption.The method of detecting aerosol extinction coefficient is proposed by emitting two ultraviolet lasers into the atmosphere at the same time. An iterative inversion method is designed to retrieve the aerosol extinction coefficient profile from two ultraviolet lidar equations with the ozone concentration profile as the constraint condition. In order to verify the correctness of the inversion method, the test is arranged by simulation signal.Two simulation ultraviolet lidar signals are obtained from supposed aerosol extinction coefficient and ozone concentration profiles, then, the aerosol extinction coefficient profiles in the ultraviolet spectrum are retrieved from the simulated signals by the inversion method. The results indicate that the inversion method is feasible and reliable.
紫外激光雷达反演气溶胶消光系数的方法
气溶胶是大气污染物的主要成分。激光雷达是探测大气气溶胶的有力工具。检测常用的是355nm的紫外光谱、可见光谱和1064nm的近红外光谱,而波长小于320nm的紫外光谱较少使用。主要原因是臭氧在大气中有一定的含量,在紫外光谱中被强烈吸收。由于气溶胶吸收、臭氧吸收和大气分子吸收的相互作用,从紫外激光雷达方程中提取气溶胶消光系数比从355nm、可见光谱和1064nm激光雷达方程中提取气溶胶消光系数要复杂得多。提出了通过向大气中同时发射两束紫外激光来探测气溶胶消光系数的方法。设计了一种以臭氧浓度曲线为约束条件,从两个紫外激光雷达方程中反演气溶胶消光系数曲线的迭代反演方法。为了验证反演方法的正确性,按照仿真信号进行测试。从假设的气溶胶消光系数和臭氧浓度曲线得到两个模拟紫外激光雷达信号,然后利用反演方法从模拟信号中反演出紫外光谱中的气溶胶消光系数曲线。结果表明,该反演方法可行、可靠。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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