Turbulence intensities in large-eddy simulation of wall-bounded flows
- Creators
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Bae, H. J.
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Lozano-Durán, A.
- Bose, S. T.
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Moin, P.
Abstract
A persistent problem in wall-bounded large-eddy simulations (LES) with Dirichlet no-slip boundary conditions is that the near-wall streamwise velocity fluctuations are overpredicted, while those in the wall-normal and spanwise directions are underpredicted. The problem may become particularly pronounced when the near-wall region is underresolved. The prediction of the fluctuations is known to improve for wall-modeled LES, where the no-slip boundary condition at the wall is typically replaced by Neumann and no-transpiration conditions for the wall-parallel and wall-normal velocities, respectively. However, the turbulence intensity peaks are sensitive to the grid resolution and the prediction may degrade when the grid is refined. In the present study, a physical explanation of this phenomena is offered in terms of the behavior of the near-wall streaks. We also show that further improvements are achieved by introducing a Robin (slip) boundary condition with transpiration instead of the Neumann condition. By using a slip condition, the inner energy production peak is damped, and the blocking effect of the wall is relaxed such that the splatting of eddies at the wall is mitigated. As a consequence, the slip boundary condition provides an accurate and consistent prediction of the turbulence intensities regardless of the near-wall resolution.
Additional Information
© 2018 American Physical Society. Received 24 July 2017; published 22 January 2018. This work was supported by NASA under the Transformative Aeronautics Concepts Program (Grant No. UNIX15AU93A).Attached Files
Published - PhysRevFluids.3.014610.pdf
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Additional details
- Eprint ID
- 108433
- Resolver ID
- CaltechAUTHORS:20210315-113239124
- NASA
- UNIX15AU93A
- Created
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2021-03-19Created from EPrint's datestamp field
- Updated
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2021-03-19Created from EPrint's last_modified field
- Caltech groups
- GALCIT