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contributor authorTian, Pengfei
contributor authorZhang, Lei
contributor authorCao, Xianjie
contributor authorSun, Naixiu
contributor authorMo, Xinyue
contributor authorLiang, Jiening
contributor authorLi, Xuetao
contributor authorGao, Xingai
contributor authorZhang, Beidou
contributor authorWang, Hongbin
date accessioned2019-09-19T10:07:02Z
date available2019-09-19T10:07:02Z
date copyright10/17/2017 12:00:00 AM
date issued2017
identifier otherjas-d-17-0019.1.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4261712
description abstractAbstractThe current understanding of the climate effects of mixed-type aerosols is an open question. The optical and radiative properties of the anthropogenic, mixed-type, and dust aerosols were studied using simultaneous observations of a sun photometer and a depolarization lidar over the Semi-Arid Climate and Environment Observatory of Lanzhou University (SACOL), northwestern China. The aerosol radiative effect was calculated using the Santa Barbara DISORT Atmospheric Radiative Transfer (SBDART) model and was in good agreement with the Aerosol Robotic Network (AERONET) product. The anthropogenic, mixed-type, and dust aerosols were identified mainly based on the lidar-measured depolarization ratio, which was supported by the airmass back trajectories. The mixed-type aerosols exhibit lower (higher) extinctions below (above) 1.5 km above the ground, indicating anthropogenic pollution from the atmospheric boundary layer and dust aerosols above. The dust aerosols exhibit the highest absolute radiative effect because of the highest aerosol loading. However, the mixed-type aerosols are effective in both scattering and absorbing solar radiation, leading to the highest cooling efficiency at the bottom of the atmosphere (BOA), 7.4% and 6.5% higher than those of the anthropogenic and dust aerosols, respectively. The mixed-type aerosols exhibit the highest warming efficiency in the atmosphere (ATM), 20.8% and 28.2% higher than the anthropogenic and dust aerosols, respectively. The mixed-type aerosols also show the lowest cooling efficiency at the top of the atmosphere (TOA). The results suggest the necessity of carefully characterizing the mixed-type aerosols in atmospheric numerical models to more precisely assess the energy budget of the Earth?atmosphere system.
publisherAmerican Meteorological Society
titleEnhanced Bottom-of-the-Atmosphere Cooling and Atmosphere Heating Efficiency by Mixed-Type Aerosols: A Classification Based on Aerosol Nonsphericity
typeJournal Paper
journal volume75
journal issue1
journal titleJournal of the Atmospheric Sciences
identifier doi10.1175/JAS-D-17-0019.1
journal fristpage113
journal lastpage124
treeJournal of the Atmospheric Sciences:;2017:;volume 075:;issue 001
contenttypeFulltext


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