Analysis Of An Rng Based Turbulence Model For Separated Flows


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Analysis of an RNG Based Turbulence Model for Separated Flows


Analysis of an RNG Based Turbulence Model for Separated Flows

Author: Institute for Computer Applications in Science and Engineering

language: en

Publisher:

Release Date: 1992


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Scientific and Technical Aerospace Reports


Scientific and Technical Aerospace Reports

Author:

language: en

Publisher:

Release Date: 1994


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A Realizable Reynolds Stress Algebraic Equation Model


A Realizable Reynolds Stress Algebraic Equation Model

Author: Tsan-Hsing Shih

language: en

Publisher:

Release Date: 1993


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The invariance theory in continuum mechanics is applied to analyze Reynolds stresses in high Reynolds number turbulent flows. The analysis leads to a turbulent constitutive relation that relates the Reynolds stresses to the mean velocity gradients in a more general form in which the classical isotropic eddy viscosity model is just the linear approximation of the general form. On the basis of realizability analysis, a set of model coefficients are obtained which are functions of the time scale ratios of the turbulence to the mean strain rate and the mean rotation rate. The coefficients will ensure the positivity of each component of the mean rotation rate. These coefficients will ensure the positivity of each component of the turbulent kinetic energy - realizability that most existing turbulence models fail to satisfy. Separated flows over backward-facing step configurations are taken as applications. The calculations are performed with a conservative finite-volume method. Grid-independent and numerical diffusion-free solutions are obtained by using differencing schemes of second-order accuracy on sufficiently fine grids. The calculated results are compared in detail with the experimental data for both mean and turbulent quantities. The comparison shows that the present proposal significantly improves the predictive capability of K-epsilon based two equation models. In addition, the proposed model is able to simulate rotational homogeneous shear flows with large rotation rates which all conventional eddy viscosity models fail to simulate.