Development of a recursion RNG-based turbulence model
Abstract
Reynolds stress closure models based on the recursion renormalization group theory are developed for the prediction of turbulent separated flows. The proposed model uses a finite wavenumber truncation scheme to account for the spectral distribution of energy. In particular, the model incorporates effects of both local and nonlocal interactions. The nonlocal interactions are shown to yield a contribution identical to that from the epsilon-renormalization group (RNG), while the local interactions introduce higher order dispersive effects. A formal analysis of the model is presented and its ability to accurately predict separated flows is analyzed from a combined theoretical and computational stand point. Turbulent flow past a backward facing step is chosen as a test case and the results obtained based on detailed computations demonstrate that the proposed recursion -RNG model with finite cut-off wavenumber can yield very good predictions for the backstep problem.
- Publication:
-
NASA STI/Recon Technical Report N
- Pub Date:
- August 1993
- Bibcode:
- 1993STIN...9413718Z
- Keywords:
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- Backward Facing Steps;
- Renormalization Group Methods;
- Reynolds Stress;
- Separated Flow;
- Turbulence Models;
- Turbulent Flow;
- Eddy Viscosity;
- Stress Analysis;
- Fluid Mechanics and Heat Transfer