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DOI10.5194/acp-20-3713-2020
The significant impact of aerosol vertical structure on lower atmosphere stability and its critical role in aerosol-planetary boundary layer (PBL) interactions
Su, Tianning1,2; Li, Zhanqing1,2; Li, Chengcai3; Li, Jing3; Han, Wenchao1,2,4,5; Shen, Chuanyang3,6; Tan, Wangshu3; Wei, Jing1,2,4,5; Guo, Jianping7
2020-03-27
发表期刊ATMOSPHERIC CHEMISTRY AND PHYSICS
ISSN1680-7316
EISSN1680-7324
出版年2020
卷号20期号:6页码:3713-3724
文章类型Article
语种英语
国家USA; Peoples R China
英文摘要

The aerosol-planetary boundary layer (PBL) interaction was proposed as an important mechanism to stabilize the atmosphere and exacerbate surface air pollution. Despite the tremendous progress made in understanding this process, its magnitude and significance still have large uncertainties and vary largely with aerosol distribution and meteorological conditions. In this study, we focus on the role of aerosol vertical distribution in thermodynamic stability and PBL development by jointly using micropulse lidar, sun photometer, and radiosonde measurements taken in Beijing. Despite the complexity of aerosol vertical distributions, cloud-free aerosol structures can be largely classified into three types: well-mixed, decreasing with height, and inverse structures. The aerosol-PBL relationship and diurnal cycles of the PBL height and PM2.5 associated with these different aerosol vertical structures show distinct characteristics. The vertical distribution of aerosol radiative forcing differs drastically among the three types, with strong heating in the lower, middle, and upper PBL, respectively. Such a discrepancy in the heating rate affects the atmospheric buoyancy and stability differently in the three distinct aerosol structures. Absorbing aerosols have a weaker effect of stabilizing the lower atmosphere under the decreasing structure than under the inverse structure. As a result, the aerosol-PBL interaction can be strengthened by the inverse aerosol structure and can be potentially neutralized by the decreasing structure. Moreover, aerosols can both enhance and suppress PBL stability, leading to both positive and negative feedback loops. This study attempts to improve our understanding of the aerosol-PBL interaction, showing the importance of the observational constraint of aerosol vertical distribution for simulating this interaction and consequent feedbacks.


领域地球科学
收录类别SCI-E
WOS记录号WOS:000522809600003
WOS关键词ENTRAINMENT ZONE THICKNESS ; BLACK CARBON ; LIDAR OBSERVATIONS ; MIXING STATE ; CHINA ; HEIGHT ; RADIOSONDE ; CLIMATE ; POLLUTION ; AERONET
WOS类目Environmental Sciences ; Meteorology & Atmospheric Sciences
WOS研究方向Environmental Sciences & Ecology ; Meteorology & Atmospheric Sciences
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/278714
专题地球科学
作者单位1.Univ Maryland, Dept Atmospher & Ocean Sci, College Pk, MD 20740 USA;
2.Univ Maryland, ESSIC, College Pk, MD 20740 USA;
3.Peking Univ, Dept Atmospher & Ocean Sci, Beijing 100871, Peoples R China;
4.Beijing Normal Univ, State Key Lab Remote Sensing Sci, Beijing 100875, Peoples R China;
5.Beijing Normal Univ, Coll Global Change & Earth Syst Sci, Beijing 100875, Peoples R China;
6.MIT, Dept Earth Atmospher & Planetary Sci, 77 Massachusetts Ave, Cambridge, MA 02139 USA;
7.Chinese Acad Meteorol Sci, State Key Lab Severe Weather, Beijing 100081, Peoples R China
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GB/T 7714
Su, Tianning,Li, Zhanqing,Li, Chengcai,et al. The significant impact of aerosol vertical structure on lower atmosphere stability and its critical role in aerosol-planetary boundary layer (PBL) interactions[J]. ATMOSPHERIC CHEMISTRY AND PHYSICS,2020,20(6):3713-3724.
APA Su, Tianning.,Li, Zhanqing.,Li, Chengcai.,Li, Jing.,Han, Wenchao.,...&Guo, Jianping.(2020).The significant impact of aerosol vertical structure on lower atmosphere stability and its critical role in aerosol-planetary boundary layer (PBL) interactions.ATMOSPHERIC CHEMISTRY AND PHYSICS,20(6),3713-3724.
MLA Su, Tianning,et al."The significant impact of aerosol vertical structure on lower atmosphere stability and its critical role in aerosol-planetary boundary layer (PBL) interactions".ATMOSPHERIC CHEMISTRY AND PHYSICS 20.6(2020):3713-3724.
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