Modeling sea-salt aerosol in a coupled climate and sectional microphysical model: mass, optical depth and number concentration

Sea-salt aerosol mass, optical depth, and number concentration over the global oceans have significant implications for aerosol direct and indirect climate effects. We model sea-salt aerosol in a coupled climate and sectional microphysical model, CAM/CARMA, with aerosol dynamics including sea-salt e...

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Main Authors: T. Fan, O. B. Toon
Format: Article
Language:English
Published: Copernicus Publications 2011-05-01
Series:Atmospheric Chemistry and Physics
Online Access:http://www.atmos-chem-phys.net/11/4587/2011/acp-11-4587-2011.pdf
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spelling doaj-4316a08ea2bc43d0b6dc4415b39532ea2020-11-24T21:34:21ZengCopernicus PublicationsAtmospheric Chemistry and Physics1680-73161680-73242011-05-011194587461010.5194/acp-11-4587-2011Modeling sea-salt aerosol in a coupled climate and sectional microphysical model: mass, optical depth and number concentrationT. FanO. B. ToonSea-salt aerosol mass, optical depth, and number concentration over the global oceans have significant implications for aerosol direct and indirect climate effects. We model sea-salt aerosol in a coupled climate and sectional microphysical model, CAM/CARMA, with aerosol dynamics including sea-salt emission, gravitational sedimentation, dry deposition, wet scavenging, and hygroscopic growth. We aim to find an integrated sea-salt source function parameterization in the global climate model to simultaneously represent mass, optical depth, and number concentration. Each of these quantities is sensitive to a different part of the aerosol size distribution, which requires a size resolved microphysical model to treat properly. The CMS source function introduced in this research, based upon several earlier source functions, reproduces measurements of mass, optical depth and number concentration as well as the size distribution better than other source function choices we tried. However, as we note, it is also important to properly set the removal rate of the particles. The source function and removal rate are coupled in producing observed abundances. We find that sea salt mass and optical depth peak in the winter, when winds are highest. However, surprisingly, particle numbers and CCN concentrations peak in summer when rainfall is lowest. The quadratic dependence of sea-salt optical depth on wind speed, observed by some, is well represented in the model. We also find good agreement with the wind speed dependency of the number concentration at the measurement location and the regional scale. The work is the basis for further investigation of the effects of sea-salt aerosol on climate and atmospheric chemistry.http://www.atmos-chem-phys.net/11/4587/2011/acp-11-4587-2011.pdf
collection DOAJ
language English
format Article
sources DOAJ
author T. Fan
O. B. Toon
spellingShingle T. Fan
O. B. Toon
Modeling sea-salt aerosol in a coupled climate and sectional microphysical model: mass, optical depth and number concentration
Atmospheric Chemistry and Physics
author_facet T. Fan
O. B. Toon
author_sort T. Fan
title Modeling sea-salt aerosol in a coupled climate and sectional microphysical model: mass, optical depth and number concentration
title_short Modeling sea-salt aerosol in a coupled climate and sectional microphysical model: mass, optical depth and number concentration
title_full Modeling sea-salt aerosol in a coupled climate and sectional microphysical model: mass, optical depth and number concentration
title_fullStr Modeling sea-salt aerosol in a coupled climate and sectional microphysical model: mass, optical depth and number concentration
title_full_unstemmed Modeling sea-salt aerosol in a coupled climate and sectional microphysical model: mass, optical depth and number concentration
title_sort modeling sea-salt aerosol in a coupled climate and sectional microphysical model: mass, optical depth and number concentration
publisher Copernicus Publications
series Atmospheric Chemistry and Physics
issn 1680-7316
1680-7324
publishDate 2011-05-01
description Sea-salt aerosol mass, optical depth, and number concentration over the global oceans have significant implications for aerosol direct and indirect climate effects. We model sea-salt aerosol in a coupled climate and sectional microphysical model, CAM/CARMA, with aerosol dynamics including sea-salt emission, gravitational sedimentation, dry deposition, wet scavenging, and hygroscopic growth. We aim to find an integrated sea-salt source function parameterization in the global climate model to simultaneously represent mass, optical depth, and number concentration. Each of these quantities is sensitive to a different part of the aerosol size distribution, which requires a size resolved microphysical model to treat properly. The CMS source function introduced in this research, based upon several earlier source functions, reproduces measurements of mass, optical depth and number concentration as well as the size distribution better than other source function choices we tried. However, as we note, it is also important to properly set the removal rate of the particles. The source function and removal rate are coupled in producing observed abundances. We find that sea salt mass and optical depth peak in the winter, when winds are highest. However, surprisingly, particle numbers and CCN concentrations peak in summer when rainfall is lowest. The quadratic dependence of sea-salt optical depth on wind speed, observed by some, is well represented in the model. We also find good agreement with the wind speed dependency of the number concentration at the measurement location and the regional scale. The work is the basis for further investigation of the effects of sea-salt aerosol on climate and atmospheric chemistry.
url http://www.atmos-chem-phys.net/11/4587/2011/acp-11-4587-2011.pdf
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