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基于多年大气辐射测量(ARM)观测的气溶胶垂直分布特征及其对暖云的影响

Characterization of the aerosol vertical distributions and their impacts on warm clouds based on multi-year ARM observations.

作者信息

Lin Yun, Takano Yoshihide, Gu Yu, Wang Yuan, Zhou Shujun, Zhang Tianhao, Zhu Kuilin, Wang Jingyu, Zhao Bin, Chen Gang, Zhang Damao, Fu Rong, Seinfeld John

机构信息

Department of Atmospheric and Oceanic Sciences, Joint Institute for Regional Earth System Science and Engineering, University of California, Los Angeles, CA 90095, United States.

Department of Atmospheric and Oceanic Sciences, Joint Institute for Regional Earth System Science and Engineering, University of California, Los Angeles, CA 90095, United States.

出版信息

Sci Total Environ. 2023 Dec 15;904:166582. doi: 10.1016/j.scitotenv.2023.166582. Epub 2023 Aug 25.

Abstract

Aerosol vertical distribution plays a crucial role in cloud development and thus precipitation since both aerosol indirect and semi-direct effects significantly depend on the relative position of aerosol layer in reference to cloud, but its precise influence on cloud remains unclear. In this study, we integrated multi-year Raman Lidar measurements of aerosol vertical profiles from the U.S. Department of Energy Atmospheric Radiation Measurement (ARM) facility with available Value-Added Products of cloud features to characterize aerosol vertical distributions and their impacts on warm clouds over the continental and marine ARM atmospheric observatories, i.e., Southern Great Plains (SGP) and Eastern North Atlantic (ENA). A unimodal seasonal distribution of aerosol optical depths (AODs) with a peak in summer is found at upper boundary layer over SGP, while a bimodal distribution is observed at ENA for the AODs at lower levels with a major winter-spring maximum. The diurnal mean of upper-level AOD at SGP shows a maximum in the early evening. According to the relative positions of aerosol layers to clouds we further identify three primary types of aerosol vertical distribution, including Random, Decreasing, and Bottom. It is found that the impacts of aerosols on cloud may or may not vary with aerosol vertical distribution depending on environmental conditions, as reflected by the wide variations of the relations between AOD and cloud properties. For example, as AOD increases, the liquid water paths (LWPs) tend to be reduced at SGP but enhanced at ENA. The relations of cloud droplet effective radius with AOD largely depend on aerosol vertical distributions, particularly showing positive values in the Random type under low-LWP condition (<50 g m). The distinct features of aerosol-cloud interactions in relation to aerosol vertical distribution are likely attributed to the continental-marine contrast in thermodynamic environments and aerosol conditions between SGP and ENA.

摘要

气溶胶垂直分布在云的发展以及降水过程中起着至关重要的作用,因为气溶胶的间接和半直接效应都显著取决于气溶胶层相对于云的相对位置,但其对云的确切影响仍不清楚。在本研究中,我们将美国能源部大气辐射测量(ARM)设施多年的气溶胶垂直廓线拉曼激光雷达测量数据与现有的云特征增值产品相结合,以表征气溶胶垂直分布及其对大陆和海洋ARM大气观测站(即美国南部大平原(SGP)和北大西洋东部(ENA))上暖云的影响。在SGP的上边界层发现气溶胶光学厚度(AOD)呈单峰季节性分布,夏季出现峰值,而在ENA,较低高度的AOD呈双峰分布,冬春季节出现主要峰值。SGP上层AOD的日均值在傍晚时分达到最大值。根据气溶胶层与云的相对位置,我们进一步确定了三种主要的气溶胶垂直分布类型,包括随机型、递减型和底层型。结果发现,气溶胶对云的影响可能会也可能不会随气溶胶垂直分布而变化,这取决于环境条件,这一点从AOD与云属性之间关系的广泛变化中可以看出。例如,随着AOD增加,SGP的液态水路径(LWP)往往会减少,而在ENA则会增加。云滴有效半径与AOD的关系在很大程度上取决于气溶胶垂直分布,特别是在低LWP条件(<50 g m)下的随机型中呈现正值。气溶胶 - 云相互作用与气溶胶垂直分布相关的独特特征可能归因于SGP和ENA之间热力学环境和气溶胶条件的海陆对比。

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