Subgrid-scale backscatter in turbulent and transitional flows
- 1 July 1991
- journal article
- Published by AIP Publishing in Physics of Fluids A: Fluid Dynamics
- Vol. 3 (7), 1766-1771
- https://doi.org/10.1063/1.857956
Abstract
Most subgrid‐scale (SGS) models for large‐eddy simulations (LES) are absolutely dissipative (that is, they remove energy from the large scales at each point in the physical space). The actual SGS stresses, however, may transfer energy to the large scales (backscatter) at a given location. Recent work on the LES of transitional flows [Piomelli e t a l., Phys. Fluids A 2, 257 (1990)] has shown that failure to account for this phenomenon can cause inaccurate prediction of the growth of the perturbations. Direct numerical simulations of transitional and turbulent channel flow and compressible isotropic turbulence are used to study the backscatter phenomenon. In all flows considered roughly 50% of the grid points were experiencing backscatter when a Fourier cutoff filter was used. The backscatter fraction was less with a Gaussian filter, and intermediate with a box filter in physical space. Moreover, the backscatter and forward scatter contributions to the SGS dissipation were comparable, and each was often much larger than the total SGS dissipation. The SGS dissipation (normalized by total dissipation) increased with filter width almost independently of filter type. The amount of backscatter showed an increasing trend with Reynolds number. In the near‐wall region of the channel, events characterized by strong Reynolds shear stress correlated fairly well with areas of high SGS dissipation (both forward and backward). In compressible isotropic turbulence similar results were obtained, independent of fluctuation Mach number.Keywords
This publication has 10 references indexed in Scilit:
- A dynamic subgrid-scale eddy viscosity modelPhysics of Fluids A: Fluid Dynamics, 1991
- Eddy shocklets in decaying compressible turbulencePhysics of Fluids A: Fluid Dynamics, 1991
- Simulation of the Kolmogorov inertial subrange using an improved subgrid modelPhysics of Fluids A: Fluid Dynamics, 1991
- Stochastic backscatter in a subgrid-scale model: Plane shear mixing layerPhysics of Fluids A: Fluid Dynamics, 1990
- On the large-eddy simulation of transitional wall-bounded flowsPhysics of Fluids A: Fluid Dynamics, 1990
- The role of the Bardina model in large eddy simulation of turbulent channel flowPhysics of Fluids A: Fluid Dynamics, 1989
- Turbulence statistics in fully developed channel flow at low Reynolds numberJournal of Fluid Mechanics, 1987
- Renormalization group analysis of turbulence. I. Basic theoryJournal of Scientific Computing, 1986
- Numerical Simulation of Turbulent FlowsAnnual Review of Fluid Mechanics, 1984
- GENERAL CIRCULATION EXPERIMENTS WITH THE PRIMITIVE EQUATIONSMonthly Weather Review, 1963