Simultaneous measurements of the relative-humidity-dependent aerosol light extinction, scattering, absorption, and single-scattering albedo with a humidified cavity-enhanced albedometer
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Published:2020-05-20
Issue:5
Volume:13
Page:2623-2634
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ISSN:1867-8548
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Container-title:Atmospheric Measurement Techniques
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language:en
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Short-container-title:Atmos. Meas. Tech.
Author:
Zhou Jiacheng, Xu Xuezhe, Zhao WeixiongORCID, Fang Bo, Liu Qianqian, Cai Yuanqing, Zhang Weijun, Venables Dean S.ORCID, Chen WeidongORCID
Abstract
Abstract. Hygroscopic aerosols take up water and grow with
increasing relative humidity (RH), giving rise to large changes in light
extinction (bext), scattering (bscat), absorption (babs), and
single scattering albedo (SSA, ω). The optical hygroscopic growth
factors for each parameter (f(RH)ext,scat,abs,ω) are thus
important for assessing aerosol effects on regional air quality, atmospheric
visibility, and radiative forcing. The RH dependence of aerosol scattering
and extinction has been studied in many laboratory and field studies.
However, owing partly to the absence of suitable instrumentation, there are
few reports of the RH dependence of aerosol absorption and ω. In
this work, we report the development of a humidified cavity-enhanced
albedometer (H-CEA) for simultaneous measurements of
f(RH)ext,scat,abs,ω at λ=532 nm from 10 % to 88 %
RH. The instrument's performance was evaluated with laboratory-generated
ammonium sulfate, sodium chloride, and nigrosin aerosols. Measured
hygroscopic growth factors for different parameters were in good agreement
with model calculations and literature-reported values, demonstrating the
accuracy of the H-CEA for measuring RH-dependent optical properties.
Funder
National Natural Science Foundation of China Natural Science Foundation of Anhui Province
Publisher
Copernicus GmbH
Subject
Atmospheric Science
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