4.7 Article

Large-eddy simulation of separation and reattachment of a flat plate turbulent boundary layer

期刊

JOURNAL OF FLUID MECHANICS
卷 785, 期 -, 页码 78-108

出版社

CAMBRIDGE UNIV PRESS
DOI: 10.1017/jfm.2015.604

关键词

turbulence modelling; turbulent boundary layers; turbulent flows

资金

  1. KAUST Office of Competitive Research Funds (OCRF) [URF/1/1394-01]
  2. KAUST OCRF Award [URF/1/1394-01]
  3. NSF [CBET 1235605]

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We present large-eddy simulations (LES) of separation and reattachment of a flat-plate turbulent boundary-layer flow. Instead of resolving the near wall region, we develop a two-dimensional virtual wall model which can calculate the timeand space-dependent skin-friction vector field at the wall, at the resolved scale. By combining the virtual-wall model with the stretched-vortex subgrid-scale (SGS) model, we construct a self-consistent framework for the LES of separating and reattaching turbulent wall-bounded flows at large Reynolds numbers. The present LES methodology is applied to two different experimental flows designed to produce separation/reattachment of a flat-plate turbulent boundary layer at medium Reynolds number Re-theta based on the momentum boundary-layer thickness theta. Comparison with data from the first case at Re-theta = 2000 demonstrates the present capability for accurate calculation of the variation, with the streamwise co-ordinate up to separation, of the skin friction coefficient, Re-theta, the boundary-layer shape factor and a non-dimensional pressure-gradient parameter. Additionally the main large-scale features of the separation bubble, including the mean streamwise velocity profiles, show good agreement with experiment. At the larger Re-theta = 11 000 of the second case, the LES provides good postdiction of the measured skin-friction variation along the whole streamwise extent of the experiment, consisting of a very strong adverse pressure gradient leading to separation within the separation bubble itself, and in the recovering or reattachment region of strongly-favourable pressure gradient. Overall, the present two-dimensional wall model used in LES appears to be capable of capturing the quantitative features of a separation-reattachment turbulent boundary-layer flow at low to moderately large Reynolds numbers.

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