A Large-Eddy Simulation Study of Atmospheric Boundary Layer Influence on Stratified Flows over TerrainSource: Journal of the Atmospheric Sciences:;2016:;Volume( 073 ):;issue: 007::page 2615Author:Sauer, Jeremy A.
,
Muñoz-Esparza, Domingo
,
Canfield, Jesse M.
,
Costigan, Keeley R.
,
Linn, Rodman R.
,
Kim, Young-Joon
DOI: 10.1175/JAS-D-15-0282.1Publisher: American Meteorological Society
Abstract: he impact of atmospheric boundary layer (ABL) interactions with large-scale stably stratified flow over an isolated, two-dimensional hill is investigated using turbulence-resolving large-eddy simulations. The onset of internal gravity wave breaking and leeside flow response regimes of trapped lee waves and nonlinear breakdown (or hydraulic-jump-like state) as they depend on the classical inverse Froude number, Fr?1 = Nh/Ug, is explored in detail. Here, N is the Brunt?Väisälä frequency, h is the hill height, and Ug is the geostrophic wind. The results here demonstrate that the presence of a turbulent ABL influences mountain wave (MW) development in critical aspects, such as dissipation of trapped lee waves and amplified stagnation zone turbulence through Kelvin?Helmholtz instability. It is shown that the nature of interactions between the large-scale flow and the ABL is better characterized by a proposed inverse compensated Froude number, = N(h ? zi)/Ug, where zi is the ABL height. In addition, it is found that the onset of the nonlinear-breakdown regime, ≈ 1.0, is initiated when the vertical wavelength becomes comparable to the sufficiently energetic scales of turbulence in the stagnation zone and ABL, yielding an abrupt change in leeside flow response. Finally, energy spectra are presented in the context of MW flows, supporting the existence of a clear transition in leeside flow response, and illustrating two distinct energy distribution states for the trapped-lee-wave and the nonlinear-breakdown regimes.
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contributor author | Sauer, Jeremy A. | |
contributor author | Muñoz-Esparza, Domingo | |
contributor author | Canfield, Jesse M. | |
contributor author | Costigan, Keeley R. | |
contributor author | Linn, Rodman R. | |
contributor author | Kim, Young-Joon | |
date accessioned | 2017-06-09T16:59:11Z | |
date available | 2017-06-09T16:59:11Z | |
date copyright | 2016/07/01 | |
date issued | 2016 | |
identifier issn | 0022-4928 | |
identifier other | ams-77469.pdf | |
identifier uri | http://onlinelibrary.yabesh.ir/handle/yetl/4220030 | |
description abstract | he impact of atmospheric boundary layer (ABL) interactions with large-scale stably stratified flow over an isolated, two-dimensional hill is investigated using turbulence-resolving large-eddy simulations. The onset of internal gravity wave breaking and leeside flow response regimes of trapped lee waves and nonlinear breakdown (or hydraulic-jump-like state) as they depend on the classical inverse Froude number, Fr?1 = Nh/Ug, is explored in detail. Here, N is the Brunt?Väisälä frequency, h is the hill height, and Ug is the geostrophic wind. The results here demonstrate that the presence of a turbulent ABL influences mountain wave (MW) development in critical aspects, such as dissipation of trapped lee waves and amplified stagnation zone turbulence through Kelvin?Helmholtz instability. It is shown that the nature of interactions between the large-scale flow and the ABL is better characterized by a proposed inverse compensated Froude number, = N(h ? zi)/Ug, where zi is the ABL height. In addition, it is found that the onset of the nonlinear-breakdown regime, ≈ 1.0, is initiated when the vertical wavelength becomes comparable to the sufficiently energetic scales of turbulence in the stagnation zone and ABL, yielding an abrupt change in leeside flow response. Finally, energy spectra are presented in the context of MW flows, supporting the existence of a clear transition in leeside flow response, and illustrating two distinct energy distribution states for the trapped-lee-wave and the nonlinear-breakdown regimes. | |
publisher | American Meteorological Society | |
title | A Large-Eddy Simulation Study of Atmospheric Boundary Layer Influence on Stratified Flows over Terrain | |
type | Journal Paper | |
journal volume | 73 | |
journal issue | 7 | |
journal title | Journal of the Atmospheric Sciences | |
identifier doi | 10.1175/JAS-D-15-0282.1 | |
journal fristpage | 2615 | |
journal lastpage | 2632 | |
tree | Journal of the Atmospheric Sciences:;2016:;Volume( 073 ):;issue: 007 | |
contenttype | Fulltext |