Accelerating high order discontinuous Galerkin solvers through a clustering-based viscous/turbulent-inviscid domain decomposition

Otmani, Kheir-Eddine ORCID: https://orcid.org/0000-0002-7487-0928, Mateo Gabín, Andrés ORCID: https://orcid.org/0000-0002-2081-6950, Rubio Calzado, Gonzalo ORCID: https://orcid.org/0000-0002-6231-4801 and Ferrer Vaccarezza, Esteban ORCID: https://orcid.org/0000-0003-1519-0444 (2024). Accelerating high order discontinuous Galerkin solvers through a clustering-based viscous/turbulent-inviscid domain decomposition. "Engineering with Computers" ; ISSN 14355663. https://doi.org/10.1007/s00366-024-02062-3.

Descripción

Título: Accelerating high order discontinuous Galerkin solvers through a clustering-based viscous/turbulent-inviscid domain decomposition
Autor/es:
Tipo de Documento: Artículo
Título de Revista/Publicación: Engineering with Computers
Fecha: 21 Septiembre 2024
ISSN: 14355663
Materias:
Palabras Clave Informales: Adaptation strategies; AIRFOI; Airfoil section; Computational Costs; Computational Fluid Dynamics; Computational fluid mechanics; Discontinuous Galerkin; elastohydrodynamics; Euler Equations; Galerkin methods; incompressible flow; Laminar flow; Large Eddy Simulation; Large Eddy Simulations; LARGE-EDDY SIMULATIONS; Machine Learning; Machine-learning; NACA0012; Navier Stokes Equations; Navier-Stokes equation; P-adaptation; Reynolds equation; Reynolds Number; Turbulence; Turbulent flow; Unsteady flow; Unsupervised clustering; Wind turbin; Wind turbine; Wind Turbines
Escuela: E.T.S. de Ingeniería Aeronáutica y del Espacio (UPM)
Departamento: Matemática Aplicada a la Ingeniería Aeroespacial
Licencias Creative Commons: Reconocimiento - Sin obra derivada - No comercial

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Resumen

We explore the unsupervised clustering technique introduced in Otmani et al. (Phys Fluids 35:027112, 2023) to identify viscous/turbulent from inviscid regions in incompressible flows. The separation of regions allows solving the Navier-Stokes equations including Large Eddy Simulation closure models only in the viscous/turbulent ones, while solving the Euler equations in the remaining of the computational domain. By solving different sets of equations, the computational cost is significantly reduced. This coupling strategy is implemented within a discontinuous Galerkin numerical framework, which allows discontinuous solutions (i.e., different sets of equations) in neighboring elements that interact through numerical fluxes. The proposed strategy maintains the same accuracy at lower cost, when compared to solving the full Navier-Stokes equations throughout the entire domain. Validation of this approach is conducted across diverse flow regimes, spanning from unsteady laminar flows to unsteady turbulent flows, including an airfoil section at Reynolds numbers Re=10(3) and 10(4) and large angles of attack, and the flow past a wind turbine, modelled using actuator lines. The computational cost is reduced by 25% and 29% for the unsteady turbulent flow around an airfoil section and the flow past the wind turbine, respectively. In addition, to further accelerate the simulations, we combine the proposed decoupling with local P-adaptation, as proposed in Tlales et al. (Eng Comput, 2024). When doing so, we reduce the computational cost by 41% and 45% for the flow around the airfoil section and the flow past the wind turbine, respectively.

Más información

ID de Registro: 86486
Identificador DC: https://oa.upm.es/86486/
Identificador OAI: oai:oa.upm.es:86486
URL Portal Científico: https://portalcientifico.upm.es/es/ipublic/item/10250844
Identificador DOI: 10.1007/s00366-024-02062-3
URL Oficial: https://link.springer.com/article/10.1007/s00366-0...
Depositado por: iMarina Portal Científico
Depositado el: 22 Ene 2025 10:11
Ultima Modificación: 22 Ene 2025 10:11