A rational length scale for large-eddy simulation of turbulence on anisotropic grids

dc.contributor
Universitat Politècnica de Catalunya. Departament de Màquines i Motors Tèrmics
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Universitat Politècnica de Catalunya. Centre de Desenvolupament de Sensors, Instrumentació i Sistemes
dc.contributor
Universitat Politècnica de Catalunya. CTTC - Centre Tecnològic de Transferència de Calor
dc.contributor.author
Trias Miquel, Francesc Xavier
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Ruano Pérez, Jesús
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Duben, Alexey
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Gorobets, Andrei
dc.date.issued
2025-08-01
dc.identifier
Trias, F.X. [et al.]. A rational length scale for large-eddy simulation of turbulence on anisotropic grids. «Physics of fluids», 1 Agost 2025, vol. 37, núm. 8, article 085239.
dc.identifier
1070-6631
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https://hdl.handle.net/2117/444511
dc.identifier
10.1063/5.0277423
dc.description.abstract
Due to the prohibitive cost of resolving all relevant scales, direct numerical simulations of turbulence remain unfeasible for most real-world applications. Consequently, dynamically simplified formulations are needed for coarse-grained simulations. In this regard, eddy-viscosity models for large-eddy simulation (LES) are widely used in both academia and industry. These models require a subgrid characteristic length, typically linked to the local grid size. While this length scale corresponds to the mesh step for isotropic grids, its definition for unstructured or anisotropic Cartesian meshes, such as the pancake-like meshes commonly used to capture near-wall turbulence or shear layers, remains an open question. Despite its significant influence on LES model performance, no consensus has been reached on its proper formulation. In this work, we introduce a novel subgrid characteristic length. This length scale is derived from the analysis of the entanglement between the numerical discretization and the filtering in LES. Its mathematical properties and simplicity make it a robust choice for reducing the impact of mesh anisotropies on simulation accuracy. The effectiveness of the proposed subgrid length is demonstrated through simulations of decaying isotropic turbulence and a turbulent channel flow using different codes.
dc.description.abstract
F.X.T. and J.R. are supported by SIMEX project (PID2022142174OB-I00) of the Ministerio de Ciencia e Innovacion MCIN/AEI/ 10.13039/501100011033 and the European Union Next GenerationEU. The work of A.G. and A.D. has been financially supported by the Russian Science Foundation, Project No. 24-11-00287 (implementation and simulations with the NOISEtte code). Calculations were carried out on the MareNostrum 5-GPP supercomputer at BSC. We thankfully acknowledge these institutions.
dc.description.abstract
Peer Reviewed
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Postprint (author's final draft)
dc.format
application/pdf
dc.language
eng
dc.relation
https://pubs.aip.org/aip/pof/article-abstract/37/8/085239/3360447/A-rational-length-scale-for-large-eddy-simulation
dc.relation
info:eu-repo/grantAgreement/AEI/Plan Estatal de Investigación Científica y Técnica y de Innovación 2021-2023/PID2022-142174OB-I00/ES/ALGORITMOS NUMERICOS AVANZADOS PARA LA SIMULACION EFICIENTE DE INTERCAMBIADORES DE CALOR INNOVADORES USANDO ARQUITECTURAS COMPUTACIONALES MODERNAS/
dc.rights
Open Access
dc.subject
Àrees temàtiques de la UPC::Física::Física de fluids
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Computational fluid dynamics
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Turbulence theory and modelling
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Fluid flows
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Navier Stokes equations
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Turbulence simulations
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Turbulent flows
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Coarse-grained simulations
dc.title
A rational length scale for large-eddy simulation of turbulence on anisotropic grids
dc.type
Article


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