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contributor authorPeters, John M.;Morrison, Hugh;Varble, Adam C.;Hannah, Walter M.;Giangrande, Scott E.
date accessioned2022-01-30T17:49:53Z
date available2022-01-30T17:49:53Z
date copyright10/15/2020 12:00:00 AM
date issued2020
identifier issn0022-4928
identifier otherjasd190244.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4264011
description abstractResearch has suggested that the structure of deep convection often consists of a series of rising thermals, or “thermal chain,” which contrasts with existing conceptual models that are used to construct cumulus parameterizations. Simplified theoretical expressions for updraft properties obtained in Part I of this study are used to develop a hypothesis explaining why this structure occurs. In this hypothesis, cumulus updraft structure is strongly influenced by organized entrainment below the updraft’s vertical velocity maximum. In a dry environment, this enhanced entrainment can locally reduce condensation rates and increase evaporation, thus eroding buoyancy. For moderate-to-large initial cloud radius R, this breaks up the updraft into a succession of discrete pulses of rising motion (i.e., a thermal chain). For small R, this leads to the structure of a single, isolated rising thermal. In contrast, moist environments are hypothesized to favor plume-like updrafts for moderate-to-large R. In a series of axisymmetric numerical cloud simulations, R and environmental relative humidity (RH) are systematically varied to test this hypothesis. Vertical profiles of fractional entrainment rate, passive tracer concentration, buoyancy, and vertical velocity from these runs agree well with vertical profiles calculated from the theoretical expressions in Part I. Analysis of the simulations supports the hypothesized dependency of updraft structure on R and RH, that is, whether it consists of an isolated thermal, a thermal chain, or a plume, and the role of organized entrainment in driving this dependency. Additional three-dimensional (3D) turbulent cloud simulations are analyzed, and the behavior of these 3D runs is qualitatively consistent with the theoretical expressions and axisymmetric simulations.
publisherAmerican Meteorological Society
titleThermal Chains and Entrainment in Cumulus Updrafts. Part II: Analysis of Idealized Simulations
typeJournal Paper
journal volume77
journal issue11
journal titleJournal of the Atmospheric Sciences
identifier doi10.1175/JAS-D-19-0244.1
journal fristpage3661
journal lastpage3681
treeJournal of the Atmospheric Sciences:;2020:;volume( 77 ):;issue: 011
contenttypeFulltext


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