Satellite observations of cloud regime development: the role of aerosol processes

Many different interactions between aerosols and clouds have been postulated, based on correlations between satellite retrieved aerosol and cloud properties. Previous studies highlighted the importance of meteorological covariations to the observed correlations. In this work, we make use of multipl...

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Main Authors: Gryspeerdt, E, Stier, P, Partridge, D
Drugi avtorji: European Geosciences Union
Format: Journal article
Jezik:English
Izdano: Copernicus Publications 2014
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author Gryspeerdt, E
Stier, P
Partridge, D
author2 European Geosciences Union
author_facet European Geosciences Union
Gryspeerdt, E
Stier, P
Partridge, D
author_sort Gryspeerdt, E
collection OXFORD
description Many different interactions between aerosols and clouds have been postulated, based on correlations between satellite retrieved aerosol and cloud properties. Previous studies highlighted the importance of meteorological covariations to the observed correlations. In this work, we make use of multiple temporally-spaced satellite retrievals to observe the development of cloud regimes. The observation of cloud regime development allows us to account for the influences of cloud fraction (CF) and meteorological factors on the aerosol retrieval. By accounting for the aerosol index (AI)-CF relationship, we reduce the influence of meteorological correlations compared to "snapshot" studies, finding that simple correlations overestimate any aerosol effect on CF by at least a factor of two. We find an increased occurrence of transitions into the stratocumulus regime over ocean with increases in MODIS AI, consistent with the hypothesis that aerosols increase stratocumulus persistence. We also observe an increase in transitions into the deep convective regime over land, consistent with the aerosol invigoration hypothesis. We find changes in the transitions from the shallow cumulus regime in different aerosol environments. The strength of these changes is strongly dependent on Low Troposphere Static Stability and 10 m windspeed, but less so on other meteorological factors. Whilst we have reduced the error due to meteorological and CF effects on the aerosol retrieval, meteorological covariation with the cloud and aerosol properties is harder to remove, so these results likely represent an upper bound on the effect of aerosols on cloud development and CF.
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spelling oxford-uuid:721db4ec-db2f-4fc5-99e2-a2998a8fa6a42022-03-26T19:48:04ZSatellite observations of cloud regime development: the role of aerosol processesJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:721db4ec-db2f-4fc5-99e2-a2998a8fa6a4EnglishSymplectic Elements at OxfordCopernicus Publications2014Gryspeerdt, EStier, PPartridge, DEuropean Geosciences UnionMany different interactions between aerosols and clouds have been postulated, based on correlations between satellite retrieved aerosol and cloud properties. Previous studies highlighted the importance of meteorological covariations to the observed correlations. In this work, we make use of multiple temporally-spaced satellite retrievals to observe the development of cloud regimes. The observation of cloud regime development allows us to account for the influences of cloud fraction (CF) and meteorological factors on the aerosol retrieval. By accounting for the aerosol index (AI)-CF relationship, we reduce the influence of meteorological correlations compared to "snapshot" studies, finding that simple correlations overestimate any aerosol effect on CF by at least a factor of two. We find an increased occurrence of transitions into the stratocumulus regime over ocean with increases in MODIS AI, consistent with the hypothesis that aerosols increase stratocumulus persistence. We also observe an increase in transitions into the deep convective regime over land, consistent with the aerosol invigoration hypothesis. We find changes in the transitions from the shallow cumulus regime in different aerosol environments. The strength of these changes is strongly dependent on Low Troposphere Static Stability and 10 m windspeed, but less so on other meteorological factors. Whilst we have reduced the error due to meteorological and CF effects on the aerosol retrieval, meteorological covariation with the cloud and aerosol properties is harder to remove, so these results likely represent an upper bound on the effect of aerosols on cloud development and CF.
spellingShingle Gryspeerdt, E
Stier, P
Partridge, D
Satellite observations of cloud regime development: the role of aerosol processes
title Satellite observations of cloud regime development: the role of aerosol processes
title_full Satellite observations of cloud regime development: the role of aerosol processes
title_fullStr Satellite observations of cloud regime development: the role of aerosol processes
title_full_unstemmed Satellite observations of cloud regime development: the role of aerosol processes
title_short Satellite observations of cloud regime development: the role of aerosol processes
title_sort satellite observations of cloud regime development the role of aerosol processes
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