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Using singular values to build a subgrid-scale model for large eddy simulations

Authors :
Jungil Lee
Sanjeeb Bose
Olivier Cabrit
Hubert Baya Toda
Franck Nicoud
Institut de Mathématiques et de Modélisation de Montpellier (I3M)
Centre National de la Recherche Scientifique (CNRS)-Université Montpellier 2 - Sciences et Techniques (UM2)-Université de Montpellier (UM)
IFP Energies nouvelles (IFPEN)
Centre Européen de Recherche et de Formation Avancée en Calcul Scientifique (CERFACS)
CERFACS
Center for Turbulence Research [Stanford] (CTR)
Stanford University
Department of Physics and Astronomy [Seoul]
Seoul National University [Seoul] (SNU)
Source :
Physics of Fluids, Physics of Fluids, American Institute of Physics, 2011, 23 (8), pp.085106. ⟨10.1063/1.3623274⟩
Publication Year :
2011
Publisher :
HAL CCSD, 2011.

Abstract

International audience; An eddy-viscosity based, subgrid-scale model for large eddy simulations is derived from the analysis of the singular values of the resolved velocity gradient tensor. The proposed sigma-model has, by construction, the property to automatically vanish as soon as the resolved field is either two-dimensional or two-component, including the pure shear and solid rotation cases. In addition, the model generates no subgrid-scale viscosity when the resolved scales are in pure axisymmetric or isotropic contraction/expansion. At last, it is shown analytically that it has the appropriate cubic behavior in the vicinity of solid boundaries without requiring any ad-hoc treatment. Results for two classical test cases (decaying isotropic turbulence and periodic channel flow) obtained from three different solvers with a variety of numerics (finite elements, finite differences, or spectral methods) are presented to illustrate the potential of this model. The results obtained with the proposed model are systematically equivalent or slightly better than the results from the Dynamic Smagorinsky model. Still, the sigma-model has a low computational cost, is easy to implement, and does not require any homogeneous direction in space or time. It is thus anticipated that it has a high potential for the computation of non-homogeneous, wall-bounded flows.

Details

Language :
English
ISSN :
10706631 and 10897666
Database :
OpenAIRE
Journal :
Physics of Fluids, Physics of Fluids, American Institute of Physics, 2011, 23 (8), pp.085106. ⟨10.1063/1.3623274⟩
Accession number :
edsair.doi.dedup.....646ce3713b649e47f6b80fe38ac59de1
Full Text :
https://doi.org/10.1063/1.3623274⟩