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Large-eddy simulations with wall modelsThe near-wall viscous and buffer regions of wall-bounded flows generally require a large expenditure of computational resources to be resolved adequately, even in large-eddy simulation (LES). Often as much as 50% of the grid points in a computational domain are devoted to these regions. The dense grids that this implies also generally require small time steps for numerical stability and/or accuracy. It is commonly assumed that the inner wall layers are near equilibrium, so that the standard logarithmic law can be applied as the boundary condition for the wall stress well away from the wall, for example, in the logarithmic region, obviating the need to expend large amounts of grid points and computational time in this region. This approach is commonly employed in LES of planetary boundary layers, and it has also been used for some simple engineering flows. In order to calculate accurately a wall-bounded flow with coarse wall resolution, one requires the wall stress as a boundary condition. The goal of this work is to determine the extent to which equilibrium and boundary layer assumptions are valid in the near-wall regions, to develop models for the inner layer based on such assumptions, and to test these modeling ideas in some relatively simple flows with different pressure gradients, such as channel flow and flow over a backward-facing step. Ultimately, models that perform adequately in these situations will be applied to more complex flow configurations, such as an airfoil.
Document ID
19960022297
Acquisition Source
Ames Research Center
Document Type
Other
Authors
Cabot, W.
(Stanford Univ. CA United States)
Date Acquired
September 6, 2013
Publication Date
December 1, 1995
Publication Information
Publication: Center for Turbulence Research Annual Research Briefs: 1995
Subject Category
Fluid Mechanics And Heat Transfer
Accession Number
96N25318
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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