Improved inversion of aerosol components in the atmospheric column from remote sensing data
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Published:2020-11-04
Issue:21
Volume:20
Page:12795-12811
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Zhang Ying, Li Zhengqiang, Chen Yu, de Leeuw GerritORCID, Zhang Chi, Xie Yisong, Li KaitaoORCID
Abstract
Abstract. Knowledge of the composition of atmospheric aerosols is important
for reducing uncertainty in climate assessment. In this study, an
improved algorithm is developed for the retrieval of atmospheric columnar
aerosol components from optical remote sensing data. This is achieved by
using the complex refractive index (CRI) of a multicomponent liquid system
in the forward model and minimizing the differences with the observations.
The aerosol components in this algorithm comprise five species, combining
eight subcomponents including black carbon (BC), water-soluble organic matter (WSOM) and
water-insoluble organic matter (WIOM), ammonium nitrate (AN), sodium
chloride (SC), dust-like content (DU), and aerosol water content in the fine and
coarse modes (AWf and AWc). The calculation of the CRI in the
multicomponent liquid system allows for the separation of the water-soluble components
(AN, WSOM and AWf) in the fine mode and SC and AWc in the
coarse mode. The uncertainty in the retrieval results is analyzed based on
the simulation of typical models, showing that the complex refractive index
obtained from instantaneous optical–physical inversion compares well with
that obtained from chemical estimation. The algorithm was used to retrieve
the columnar aerosol components over China using the ground-based remote
sensing measurements from the Sun–sky radiometer Observation NETwork (SONET)
in the period from 2010 to 2016. The results were used to analyze the
regional distribution and interannual variation. The analysis shows that the
atmospheric columnar DU component is dominant in the northern region of
China, whereas the AW is higher in the southern coastal region. The SC
component retrieved over the desert in northwest China originates from a
paleomarine source. The AN significantly decreased from 2011 to 2016, by
21.9 mg m−2, which is inseparable from China's environmental control
policies.
Funder
National Natural Science Foundation of China
Publisher
Copernicus GmbH
Subject
Atmospheric Science
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