A Fluid-Dynamical Subgrid Scale Model for Highly Compressible Astrophysical Turbulence
W. Schmidt, C. Federrath

TL;DR
This paper develops and tests a new subgrid scale turbulence model for highly compressible astrophysical flows, improving the accuracy of simulations involving unresolved turbulence effects.
Contribution
It introduces a novel mixed closure for SGS turbulence energy that combines eddy-viscosity and non-linear terms, validated through high-resolution simulation data.
Findings
SGS turbulence energy follows a power law with grid scale
Unresolved velocity RMS is proportional to resolved turbulence RMS
Dissipation rate and energy flux are constant across scales
Abstract
We formulate and implement the Euler equations with SGS dynamics and provide numerical tests of an SGS turbulence energy model that predicts the turbulent pressure of unresolved velocity fluctuations and the rate of dissipation for highly compressible turbulence. We test closures for the turbulence energy cascade by filtering data from high-resolution simulations of forced isothermal and adiabatic turbulence. Optimal properties and an excellent correlation are found for a linear combination of the eddy-viscosity closure that is employed in LES of weakly compressible turbulence and a term that is non-linear in the Jacobian matrix of the velocity. Using this mixed closure, the SGS turbulence energy model is validated in LES of turbulence with stochastic forcing. It is found that the SGS model satisfies several important requirements: 1. The mean SGS turbulence energy follows a power law…
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