Non-Boussinesq subgrid-scale model with dynamic tensorial coefficients
Rahul Agrawal, Michael P. Whitmore, Kevin P. Griffin, Sanjeeb T. Bose,, Parviz Moin

TL;DR
This paper introduces a novel non-Boussinesq subgrid-scale model with dynamically computed tensorial coefficients for large-eddy simulations, addressing limitations of traditional models by improving dissipation and accuracy in complex turbulent flows.
Contribution
The paper presents the dynamic tensor-coefficient Smagorinsky model (DTCSM), a new LES model that dynamically computes tensorial coefficients, improving turbulence modeling especially near walls and in complex flows.
Findings
DTCSM provides sufficient dissipation of turbulent kinetic energy.
DTCSM shows improved accuracy over existing models in complex flow simulations.
Model predictions align well with DNS and experimental data.
Abstract
A major drawback of Boussinesq-type subgrid-scale stress models used in large-eddy simulations is the inherent assumption of alignment between large-scale strain rates and filtered subgrid-stresses. A priori analyses using direct numerical simulation (DNS) data has shown that this assumption is invalid locally as subgrid-scale stresses are poorly correlated with the large-scale strain rates [Bardina et al., AIAA 1980; Meneveau and Liu, Ann. Rev. Fluid Mech. 2002]. In the present work, a new, non-Boussinesq subgrid-scale model is presented where the model coefficients are computed dynamically. Some previous non-Boussinesq models have observed issues in providing adequate dissipation of turbulent kinetic energy [e.g.: Bardina et al., AIAA 1980; Clark et al. J. Fluid Mech., 1979; Stolz and Adams, Phys. of Fluids, 1999]; however, the present model is shown to provide sufficient dissipation…
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Taxonomy
TopicsFluid Dynamics and Turbulent Flows · Fluid Dynamics and Vibration Analysis · Lattice Boltzmann Simulation Studies
