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Impact of varying lidar measurement and data processing techniques in evaluating cirrus cloud and aerosol direct radiative effects

机译:改变激光雷达测量和数据处理技术在评估卷云和气溶胶直接辐射效应中的影响

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摘要

In the past 2 decades, ground-based lidar networks have drastically increased in scope and relevance, thanks primarily to the advent of lidar observations from space and their need for validation. Lidar observations of aerosol and cloud geometrical, optical and microphysical atmospheric properties are subsequently used to evaluate their direct radiative effects on climate. However, the retrievals are strongly dependent on the lidar instrument measurement technique and subsequent data processing methodologies. In this paper, we evaluate the discrepancies between the use of Raman and elastic lidar measurement techniques and corresponding data processing methods for two aerosol layers in the free troposphere and for two cirrus clouds with different optical depths. Results show that the different lidar techniques are responsible for discrepancies in the model-derived direct radiative effects for biomass burning (0.05 W m(-2) at surface and 0.007 W m(-2) at top of the atmosphere) and dust aerosol layers (0.7 W m(-2) at surface and 0.85 W m(-2) at top of the atmosphere).
机译:在过去的二十年中,基于地面的激光雷达网络的范围和相关性幅度大幅增加,主要感谢Lidar观测的出现,以及他们对验证的需求。随后用于评估它们对气候的直接辐射效果的激光乐气溶胶和云几何,光学和微神科大气性质。然而,检索力强烈依赖于激光乐仪测量技术和随后的数据处理方法。在本文中,我们评估了拉曼和弹性LIDAR测量技术的使用与自由对流层中的两个气溶胶层的相应数据处理方法之间的差异,以及具有不同光学深度的两个卷云。结果表明,不同的激光雷达技术负责在大气顶部的表面燃烧(0.05WM(-2)的模型衍生直接辐射效果中的差异)和大气顶部的0.007W m(-2))和灰尘气溶胶层(在大气顶部的表面和0.85W m(-2)的0.7W m(-2))。

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