Progress in the development of a Reynolds-stress turbulence closure
Abstract
The paper develops proposals for a model of turbulence in which the Reynolds stresses are determined from the solution of transport equations for these variables and for the turbulence energy dissipation rate epsilon. Particular attention is given to the approximation of the pressure-strain correlations; the forms adopted appear to give reasonably satisfactory partitioning of the stresses both near walls and in free shear flows. Numerical solutions of the model equations are presented for a selection of strained homogeneous shear flows and for two-dimensional inhomogeneous shear flows including the jet, the wake, the mixing layer and plane channel flow. In addition, it is shown that the closure does predict a very strong influence of secondary strain terms for flow over curved surfaces.
- Publication:
-
Journal of Fluid Mechanics
- Pub Date:
- April 1975
- DOI:
- 10.1017/S0022112075001814
- Bibcode:
- 1975JFM....68..537L
- Keywords:
-
- Boltzmann Transport Equation;
- Reynolds Stress;
- Shear Flow;
- Turbulent Flow;
- Two Dimensional Flow;
- Energy Dissipation;
- Mathematical Models;
- Mixing Layers (Fluids);
- Nonuniform Flow;
- Secondary Flow;
- Turbulent Jets;
- Turbulent Mixing;
- Fluid Mechanics and Heat Transfer