Limitations of One-Dimensional Mesoscale PBL Parameterizations in Reproducing Mountain-Wave FlowsSource: Journal of the Atmospheric Sciences:;2015:;Volume( 073 ):;issue: 007::page 2603DOI: 10.1175/JAS-D-15-0304.1Publisher: American Meteorological Society
Abstract: esoscale models are considered to be the state of the art in modeling mountain-wave flows. Herein, the authors investigate the role and accuracy of planetary boundary layer (PBL) parameterizations in handling the interaction between large-scale mountain waves and the atmospheric boundary layer. To that end, recent large-eddy simulation (LES) results of mountain waves over a symmetric two-dimensional bell-shaped hill are used and compared to four commonly used PBL schemes. It is found that one-dimensional PBL parameterizations produce reasonable agreement with the LES results in terms of vertical wavelength, amplitude of velocity, and turbulent kinetic energy distribution in the downhill shooting-flow region. However, the assumption of horizontal homogeneity in PBL parameterizations does not hold in the context of these complex flow configurations. This inappropriate modeling assumption results in a vertical wavelength shift, producing errors of approximately 10 m s?1 at downstream locations because of the presence of a coherent trapped lee wave that does not mix with the atmospheric boundary layer. In contrast, horizontally integrated momentum flux derived from these PBL schemes displays a realistic pattern. Therefore, results from mesoscale models using ensembles of one-dimensional PBL schemes can still potentially be used to parameterize drag effects in general circulation models. Nonetheless, three-dimensional PBL schemes must be developed in order for mesoscale models to accurately represent complex terrain and other types of flows where one-dimensional PBL assumptions are violated.
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contributor author | Muñoz-Esparza, Domingo | |
contributor author | Sauer, Jeremy A. | |
contributor author | Linn, Rodman R. | |
contributor author | Kosović, Branko | |
date accessioned | 2017-06-09T16:59:17Z | |
date available | 2017-06-09T16:59:17Z | |
date copyright | 2016/07/01 | |
date issued | 2015 | |
identifier issn | 0022-4928 | |
identifier other | ams-77486.pdf | |
identifier uri | http://onlinelibrary.yabesh.ir/handle/yetl/4220049 | |
description abstract | esoscale models are considered to be the state of the art in modeling mountain-wave flows. Herein, the authors investigate the role and accuracy of planetary boundary layer (PBL) parameterizations in handling the interaction between large-scale mountain waves and the atmospheric boundary layer. To that end, recent large-eddy simulation (LES) results of mountain waves over a symmetric two-dimensional bell-shaped hill are used and compared to four commonly used PBL schemes. It is found that one-dimensional PBL parameterizations produce reasonable agreement with the LES results in terms of vertical wavelength, amplitude of velocity, and turbulent kinetic energy distribution in the downhill shooting-flow region. However, the assumption of horizontal homogeneity in PBL parameterizations does not hold in the context of these complex flow configurations. This inappropriate modeling assumption results in a vertical wavelength shift, producing errors of approximately 10 m s?1 at downstream locations because of the presence of a coherent trapped lee wave that does not mix with the atmospheric boundary layer. In contrast, horizontally integrated momentum flux derived from these PBL schemes displays a realistic pattern. Therefore, results from mesoscale models using ensembles of one-dimensional PBL schemes can still potentially be used to parameterize drag effects in general circulation models. Nonetheless, three-dimensional PBL schemes must be developed in order for mesoscale models to accurately represent complex terrain and other types of flows where one-dimensional PBL assumptions are violated. | |
publisher | American Meteorological Society | |
title | Limitations of One-Dimensional Mesoscale PBL Parameterizations in Reproducing Mountain-Wave Flows | |
type | Journal Paper | |
journal volume | 73 | |
journal issue | 7 | |
journal title | Journal of the Atmospheric Sciences | |
identifier doi | 10.1175/JAS-D-15-0304.1 | |
journal fristpage | 2603 | |
journal lastpage | 2614 | |
tree | Journal of the Atmospheric Sciences:;2015:;Volume( 073 ):;issue: 007 | |
contenttype | Fulltext |