LES mesh resolution requirements for particledriven gravity currents

In this study we investigate the influence of grid resolution on a near-wall resolved LES model of a lock-exchange particle-driven gravity current. The simulations are performed using the finite volume Boussinesq code SnS with a Smagorinsky turbulence model for a buoyant Reynolds number of 60,000 on...

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Main Authors: Pelmard Joë, Friedrich Heide, Norris Stuart
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:E3S Web of Conferences
Online Access:https://doi.org/10.1051/e3sconf/20184005028
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spelling doaj-e3f484fe299d4773977a1c46120c96fd2021-03-02T10:14:24ZengEDP SciencesE3S Web of Conferences2267-12422018-01-01400502810.1051/e3sconf/20184005028e3sconf_riverflow2018_05028LES mesh resolution requirements for particledriven gravity currentsPelmard JoëFriedrich HeideNorris StuartIn this study we investigate the influence of grid resolution on a near-wall resolved LES model of a lock-exchange particle-driven gravity current. The simulations are performed using the finite volume Boussinesq code SnS with a Smagorinsky turbulence model for a buoyant Reynolds number of 60,000 on 4 grid sizes. According to previous studies, two-point correlations are most appropriate to estimate LES resolution. With the largest scales of the flow being resolved by more than 20 cells, well-resolved LES is obtained for grid resolutions of 1925×62×125 and finer. In addition, in order to apply the turbulence model correctly, we show that the velocity power spectrum densities provide useful information for the maximum cell size. The ratio of the subgrid scale viscosity to the molecular viscosity and the subgrid scale shear-stress to the resolved Reynolds stress show good convergence with grid refinement. The ratios vSGS / <0.3 above the current and τSGS (u'v')ave < 0.05 inside the mixing layer, are chosen as threshold values, based on our evaluation study.https://doi.org/10.1051/e3sconf/20184005028
collection DOAJ
language English
format Article
sources DOAJ
author Pelmard Joë
Friedrich Heide
Norris Stuart
spellingShingle Pelmard Joë
Friedrich Heide
Norris Stuart
LES mesh resolution requirements for particledriven gravity currents
E3S Web of Conferences
author_facet Pelmard Joë
Friedrich Heide
Norris Stuart
author_sort Pelmard Joë
title LES mesh resolution requirements for particledriven gravity currents
title_short LES mesh resolution requirements for particledriven gravity currents
title_full LES mesh resolution requirements for particledriven gravity currents
title_fullStr LES mesh resolution requirements for particledriven gravity currents
title_full_unstemmed LES mesh resolution requirements for particledriven gravity currents
title_sort les mesh resolution requirements for particledriven gravity currents
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2018-01-01
description In this study we investigate the influence of grid resolution on a near-wall resolved LES model of a lock-exchange particle-driven gravity current. The simulations are performed using the finite volume Boussinesq code SnS with a Smagorinsky turbulence model for a buoyant Reynolds number of 60,000 on 4 grid sizes. According to previous studies, two-point correlations are most appropriate to estimate LES resolution. With the largest scales of the flow being resolved by more than 20 cells, well-resolved LES is obtained for grid resolutions of 1925×62×125 and finer. In addition, in order to apply the turbulence model correctly, we show that the velocity power spectrum densities provide useful information for the maximum cell size. The ratio of the subgrid scale viscosity to the molecular viscosity and the subgrid scale shear-stress to the resolved Reynolds stress show good convergence with grid refinement. The ratios vSGS / <0.3 above the current and τSGS (u'v')ave < 0.05 inside the mixing layer, are chosen as threshold values, based on our evaluation study.
url https://doi.org/10.1051/e3sconf/20184005028
work_keys_str_mv AT pelmardjoe lesmeshresolutionrequirementsforparticledrivengravitycurrents
AT friedrichheide lesmeshresolutionrequirementsforparticledrivengravitycurrents
AT norrisstuart lesmeshresolutionrequirementsforparticledrivengravitycurrents
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