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    Large-Eddy Simulation over Complex Terrain Using an Improved Immersed Boundary Method in the Weather Research and Forecasting Model

    Source: Monthly Weather Review:;2018:;volume 146:;issue 009::page 2781
    Author:
    Bao, Jingyi
    ,
    Chow, Fotini Katopodes
    ,
    Lundquist, Katherine A.
    DOI: 10.1175/MWR-D-18-0067.1
    Publisher: American Meteorological Society
    Abstract: AbstractThe Weather Research and Forecasting (WRF) Model is increasingly being used for higher-resolution atmospheric simulations over complex terrain. With increased resolution, resolved terrain slopes become steeper, and the native terrain-following coordinates used in WRF result in numerical errors and instability. The immersed boundary method (IBM) uses a nonconformal grid with the terrain surface represented through interpolated forcing terms. Lundquist et al.?s WRF-IBM implementation eliminates the limitations of WRF?s terrain-following coordinate and was previously validated with a no-slip boundary condition for urban simulations and idealized terrain. This paper describes the implementation of a log-law boundary condition into WRF-IBM to extend its applicability to general atmospheric complex terrain simulations. The implementation of the improved WRF-IBM boundary condition is validated for neutral flow over flat terrain and the complex terrain cases of Askervein Hill, Scotland, and Bolund Hill, Denmark. First, comparisons are made to similarity theory and standard WRF results for the flat terrain case. Then, simulations of flow over the moderately sloped Askervein Hill are used to demonstrate agreement between the IBM and terrain-following WRF results, as well as agreement with observations. Finally, Bolund Hill simulations show that WRF-IBM can handle steep topography (standard WRF fails) and compares well to observations. Overall, the new WRF-IBM boundary condition shows improved performance, though the leeside representation of the flow can be potentially further improved.
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      Large-Eddy Simulation over Complex Terrain Using an Improved Immersed Boundary Method in the Weather Research and Forecasting Model

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    contributor authorBao, Jingyi
    contributor authorChow, Fotini Katopodes
    contributor authorLundquist, Katherine A.
    date accessioned2019-09-19T10:04:58Z
    date available2019-09-19T10:04:58Z
    date copyright7/9/2018 12:00:00 AM
    date issued2018
    identifier othermwr-d-18-0067.1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4261325
    description abstractAbstractThe Weather Research and Forecasting (WRF) Model is increasingly being used for higher-resolution atmospheric simulations over complex terrain. With increased resolution, resolved terrain slopes become steeper, and the native terrain-following coordinates used in WRF result in numerical errors and instability. The immersed boundary method (IBM) uses a nonconformal grid with the terrain surface represented through interpolated forcing terms. Lundquist et al.?s WRF-IBM implementation eliminates the limitations of WRF?s terrain-following coordinate and was previously validated with a no-slip boundary condition for urban simulations and idealized terrain. This paper describes the implementation of a log-law boundary condition into WRF-IBM to extend its applicability to general atmospheric complex terrain simulations. The implementation of the improved WRF-IBM boundary condition is validated for neutral flow over flat terrain and the complex terrain cases of Askervein Hill, Scotland, and Bolund Hill, Denmark. First, comparisons are made to similarity theory and standard WRF results for the flat terrain case. Then, simulations of flow over the moderately sloped Askervein Hill are used to demonstrate agreement between the IBM and terrain-following WRF results, as well as agreement with observations. Finally, Bolund Hill simulations show that WRF-IBM can handle steep topography (standard WRF fails) and compares well to observations. Overall, the new WRF-IBM boundary condition shows improved performance, though the leeside representation of the flow can be potentially further improved.
    publisherAmerican Meteorological Society
    titleLarge-Eddy Simulation over Complex Terrain Using an Improved Immersed Boundary Method in the Weather Research and Forecasting Model
    typeJournal Paper
    journal volume146
    journal issue9
    journal titleMonthly Weather Review
    identifier doi10.1175/MWR-D-18-0067.1
    journal fristpage2781
    journal lastpage2797
    treeMonthly Weather Review:;2018:;volume 146:;issue 009
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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