APS Logo

Discretization induced statistical artifacts in large-eddy simulation

ORAL

Abstract

Two effects of numerical discretization on the statistical properties of large-eddy simulation (LES) are discussed. First, we demonstrate the impact of numerical dispersion error on the energy cascade in LES. It is shown that dispersion error causes a phase decoherence between triad interacting wavemodes, leading to a reduction in the mean energy transfer rate for these scales and a corresponding reduction in the energy spectrum. The second result concerns the commutator between the filtering and differentiation operators, which arises as a result of inhomogeneous filtering/resolution in a LES. A statistical description of the commutator is derived for a general filter in terms of the energy spectrum, which can serve as a target for commutation models and determines the importance of the commutator relative to other turbulent processes. Both issues are explored through multiscale asymptotic analyses and simulations of homogeneous isotropic turbulence.

Publication: Moser, Robert D., Sigfried W. Haering, and Gopal R. Yalla. "Statistical properties of subgrid-scale turbulence models." Annual Review of Fluid Mechanics 53 (2021): 255-286.<br><br>Yalla, Gopal R., Todd A. Oliver, Sigfried W. Haering, Björn Engquist, and Robert D. Moser. "Effects of resolution inhomogeneity in large-eddy simulation." Physical Review Fluids 6, no. 7 (2021): 074604<br><br>Yalla, Gopal R., Todd A. Oliver, and Robert D. Moser. "Numerical dispersion effects on the energy cascade in large-eddy simulation." arXiv preprint arXiv:2106.14279 (2021).

Presenters

  • Gopal R Yalla

    The University of Texas at Austin

Authors

  • Gopal R Yalla

    The University of Texas at Austin

  • Robert D Moser

    University of Texas at Austin, The University of Texas at Austin, UT Austin

  • Todd Oliver

    The University of Texas at Austin