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contributor authorMacDonald, Michael;Teixeira, João
date accessioned2022-01-30T17:50:42Z
date available2022-01-30T17:50:42Z
date copyright9/9/2020 12:00:00 AM
date issued2020
identifier issn0022-4928
identifier otherjasd190332.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4264038
description abstractWe present a turbulent kinetic energy (TKE) closure scheme for the stably stratified atmosphere in which the mixing lengths for momentum and heat are not parameterized in the same manner. The key difference is that, while the mixing length for heat tends toward the stability independent mixing length for momentum in neutrally stratified conditions, it tends toward one based on the Brunt–Väisälä time scale and square root of the TKE in the limit of large stability. This enables a unique steady-state solution for TKE to be obtained, which we demonstrate would otherwise be impossible if the mixing lengths were the same. Despite the model’s relative simplicity, it is shown to perform reasonably well with observational data from the 1999 Cooperative Atmosphere–Surface Exchange Study (CASES-99) using commonly employed model constants. Analyzing the scaling behavior of the nondimensional velocity and potential temperature gradients, or of the stability (correction) functions, reveals that for large stability the present model scales in the same manner as the first-order operational scheme of Viterbo et al. Alternatively, it appears as a blend of two cases of the TKE closure scheme of Baas et al. Critically, because a unique steady-state TKE can be obtained, the present model avoids the nonphysical behavior identified in one of the cases of Baas et al.
publisherAmerican Meteorological Society
titleScaling Behavior of a Turbulent Kinetic Energy Closure Scheme for the Stably Stratified Atmosphere: A Steady-State Analysis
typeJournal Paper
journal volume77
journal issue9
journal titleJournal of the Atmospheric Sciences
identifier doi10.1175/JAS-D-19-0332.1
journal fristpage3161
journal lastpage3170
treeJournal of the Atmospheric Sciences:;2020:;volume( 77 ):;issue: 009
contenttypeFulltext


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