Representing the Fate of Springtime Arctic Clouds.

Observations and modeling results have shown the high latitudes’ environment changing in a warmer climate. The research presented focuses on the parameterizations used to simulate Arctic Mixed-Phase Stratocumulus (AMPS) clouds and the sensitivity of the AMPS to changing environmental conditions. A L...

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Main Author: Roesler, Erika L.
Other Authors: Posselt, Derek J., Aciego, Sarah M., Flanner, Mark G., Penner, Joyce E., Rood, Richard B.
Format: Thesis
Language:English
Published: 2012
Subjects:
Online Access:https://hdl.handle.net/2027.42/95934
id ftumdeepblue:oai:deepblue.lib.umich.edu:2027.42/95934
record_format openpolar
spelling ftumdeepblue:oai:deepblue.lib.umich.edu:2027.42/95934 2024-01-07T09:41:26+01:00 Representing the Fate of Springtime Arctic Clouds. Roesler, Erika L. Posselt, Derek J. Aciego, Sarah M. Flanner, Mark G. Penner, Joyce E. Rood, Richard B. 2012 application/pdf https://hdl.handle.net/2027.42/95934 en_US eng https://hdl.handle.net/2027.42/95934 Arctic Mixed-Phase Stratocumulus Clouds Atmospheric Oceanic and Space Sciences Science Thesis 2012 ftumdeepblue 2023-12-10T17:53:58Z Observations and modeling results have shown the high latitudes’ environment changing in a warmer climate. The research presented focuses on the parameterizations used to simulate Arctic Mixed-Phase Stratocumulus (AMPS) clouds and the sensitivity of the AMPS to changing environmental conditions. A Large Eddy Simulation (LES) is used to reproduce an idealized AMPS during the intensive observation period, Indirect and Semi-Direct Aerosol Campaign (ISDAC). The level of complexity needed to simulate this cloud is investigated with two microphysics routines and two subgrid scale turbulent closure models. It was found that both the microphysics routines accurately produced macrophysical properties of the observed cloud, and that the less computationally expensive microphysics parameterization could be used to reproduce the AMPS. When the subgrid scale turbulent closure models were evaluated with the microphysics routines, it was found the choice of turbulent closure model had more of an effect on the cloud properties than the choice of microphysics. Knowledge of the parameterizations needed for representing the AMPS were applied to a parameter-space-filling uncertainty quantification technique to understand the sensitivity of the mixed-phase cloud to changes in its environment. The LES model was connected to the uncertainty quantification toolkit, Design Analysis Kit for Optimization and Terascale Applications (DAKOTA), which produced parameter ranges from which the LES model tried to produce a boundary layer mixed-phase cloud. The environmental variables that were changed were the cloud ice and aerosol concentration, surface sensible and latent heat fluxes, and large scale temperature, water vapor, and vertical motion. Four characteristic behaviors were used to classify the fates of the AMPS: stability, growth, decay, and dissipation. It was found the longevity and spatial extent of the AMPS were most sensitive to changes in large-scale temperature, water vapor, and vertical motion in the variable ranges that were ... Thesis Arctic University of Michigan: Deep Blue Arctic
institution Open Polar
collection University of Michigan: Deep Blue
op_collection_id ftumdeepblue
language English
topic Arctic Mixed-Phase Stratocumulus Clouds
Atmospheric
Oceanic and Space Sciences
Science
spellingShingle Arctic Mixed-Phase Stratocumulus Clouds
Atmospheric
Oceanic and Space Sciences
Science
Roesler, Erika L.
Representing the Fate of Springtime Arctic Clouds.
topic_facet Arctic Mixed-Phase Stratocumulus Clouds
Atmospheric
Oceanic and Space Sciences
Science
description Observations and modeling results have shown the high latitudes’ environment changing in a warmer climate. The research presented focuses on the parameterizations used to simulate Arctic Mixed-Phase Stratocumulus (AMPS) clouds and the sensitivity of the AMPS to changing environmental conditions. A Large Eddy Simulation (LES) is used to reproduce an idealized AMPS during the intensive observation period, Indirect and Semi-Direct Aerosol Campaign (ISDAC). The level of complexity needed to simulate this cloud is investigated with two microphysics routines and two subgrid scale turbulent closure models. It was found that both the microphysics routines accurately produced macrophysical properties of the observed cloud, and that the less computationally expensive microphysics parameterization could be used to reproduce the AMPS. When the subgrid scale turbulent closure models were evaluated with the microphysics routines, it was found the choice of turbulent closure model had more of an effect on the cloud properties than the choice of microphysics. Knowledge of the parameterizations needed for representing the AMPS were applied to a parameter-space-filling uncertainty quantification technique to understand the sensitivity of the mixed-phase cloud to changes in its environment. The LES model was connected to the uncertainty quantification toolkit, Design Analysis Kit for Optimization and Terascale Applications (DAKOTA), which produced parameter ranges from which the LES model tried to produce a boundary layer mixed-phase cloud. The environmental variables that were changed were the cloud ice and aerosol concentration, surface sensible and latent heat fluxes, and large scale temperature, water vapor, and vertical motion. Four characteristic behaviors were used to classify the fates of the AMPS: stability, growth, decay, and dissipation. It was found the longevity and spatial extent of the AMPS were most sensitive to changes in large-scale temperature, water vapor, and vertical motion in the variable ranges that were ...
author2 Posselt, Derek J.
Aciego, Sarah M.
Flanner, Mark G.
Penner, Joyce E.
Rood, Richard B.
format Thesis
author Roesler, Erika L.
author_facet Roesler, Erika L.
author_sort Roesler, Erika L.
title Representing the Fate of Springtime Arctic Clouds.
title_short Representing the Fate of Springtime Arctic Clouds.
title_full Representing the Fate of Springtime Arctic Clouds.
title_fullStr Representing the Fate of Springtime Arctic Clouds.
title_full_unstemmed Representing the Fate of Springtime Arctic Clouds.
title_sort representing the fate of springtime arctic clouds.
publishDate 2012
url https://hdl.handle.net/2027.42/95934
geographic Arctic
geographic_facet Arctic
genre Arctic
genre_facet Arctic
op_relation https://hdl.handle.net/2027.42/95934
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