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Microphysical variability of Amazonian deep convective cores observed by CloudSat and simulated by a multi-scale modeling framework

Recently launched cloud observing satellites provide information about the vertical structure of deep convection and its microphysical characteristics. In this study, CloudSat reflectivity data is stratified by cloud type, and the contoured frequency by altitude diagrams reveal a double-arc structur...

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Detalles Bibliográficos
Autores principales: Dodson, J. Brant, Taylor, Patrick C., Branson, Mark
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7816732/
https://www.ncbi.nlm.nih.gov/pubmed/33479566
http://dx.doi.org/10.5194/acp-18-6493-2018
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author Dodson, J. Brant
Taylor, Patrick C.
Branson, Mark
author_facet Dodson, J. Brant
Taylor, Patrick C.
Branson, Mark
author_sort Dodson, J. Brant
collection PubMed
description Recently launched cloud observing satellites provide information about the vertical structure of deep convection and its microphysical characteristics. In this study, CloudSat reflectivity data is stratified by cloud type, and the contoured frequency by altitude diagrams reveal a double-arc structure in deep convective cores (DCCs) above 8 km. This suggests two distinct hydrometeor modes (snow versus hail/graupel) controlling variability in reflectivity profiles. The day–night contrast in the double arcs is about four times larger than the wet–dry season contrast. Using QuickBeam, the vertical reflectivity structure of DCCs is analyzed in two versions of the Superparameterized Community Atmospheric Model (SP-CAM) with single-moment (no graupel) and double-moment (with graupel) microphysics. Double-moment microphysics shows better agreement with observed reflectivity profiles; however, neither model variant captures the double-arc structure. Ultimately, the results show that simulating realistic DCC vertical structure and its variability requires accurate representation of ice microphysics, in particular the hail/graupel modes, though this alone is insufficient.
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spelling pubmed-78167322021-01-20 Microphysical variability of Amazonian deep convective cores observed by CloudSat and simulated by a multi-scale modeling framework Dodson, J. Brant Taylor, Patrick C. Branson, Mark Atmos Chem Phys Article Recently launched cloud observing satellites provide information about the vertical structure of deep convection and its microphysical characteristics. In this study, CloudSat reflectivity data is stratified by cloud type, and the contoured frequency by altitude diagrams reveal a double-arc structure in deep convective cores (DCCs) above 8 km. This suggests two distinct hydrometeor modes (snow versus hail/graupel) controlling variability in reflectivity profiles. The day–night contrast in the double arcs is about four times larger than the wet–dry season contrast. Using QuickBeam, the vertical reflectivity structure of DCCs is analyzed in two versions of the Superparameterized Community Atmospheric Model (SP-CAM) with single-moment (no graupel) and double-moment (with graupel) microphysics. Double-moment microphysics shows better agreement with observed reflectivity profiles; however, neither model variant captures the double-arc structure. Ultimately, the results show that simulating realistic DCC vertical structure and its variability requires accurate representation of ice microphysics, in particular the hail/graupel modes, though this alone is insufficient. 2018-05-08 2018-05 /pmc/articles/PMC7816732/ /pubmed/33479566 http://dx.doi.org/10.5194/acp-18-6493-2018 Text en http://creativecommons.org/licenses/by/4.0/ This work is distributed under the Creative Commons Attribution 4.0 License.
spellingShingle Article
Dodson, J. Brant
Taylor, Patrick C.
Branson, Mark
Microphysical variability of Amazonian deep convective cores observed by CloudSat and simulated by a multi-scale modeling framework
title Microphysical variability of Amazonian deep convective cores observed by CloudSat and simulated by a multi-scale modeling framework
title_full Microphysical variability of Amazonian deep convective cores observed by CloudSat and simulated by a multi-scale modeling framework
title_fullStr Microphysical variability of Amazonian deep convective cores observed by CloudSat and simulated by a multi-scale modeling framework
title_full_unstemmed Microphysical variability of Amazonian deep convective cores observed by CloudSat and simulated by a multi-scale modeling framework
title_short Microphysical variability of Amazonian deep convective cores observed by CloudSat and simulated by a multi-scale modeling framework
title_sort microphysical variability of amazonian deep convective cores observed by cloudsat and simulated by a multi-scale modeling framework
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7816732/
https://www.ncbi.nlm.nih.gov/pubmed/33479566
http://dx.doi.org/10.5194/acp-18-6493-2018
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