High-order compact gas-kinetic scheme in arbitrary Lagrangian-Eulerian formulation

Fuente: arXiv
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Auteurs principaux: Zhang, Yue, Xu, Kun
Format: Preprint
Publié: 2024
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author Zhang, Yue
Xu, Kun
author_facet Zhang, Yue
Xu, Kun
contents This study proposes an extension of the high-order compact gas-kinetic scheme (CGKS) to compressible flow simulation in an arbitrary Lagrangian-Eulerian (ALE) formulation in unstructured mesh. The ALE method is achieved by subdividing arbitrary mesh into tetrahedrons and integrating flux function in a local coordinate system at the cell interface to ensure geometric conservation law. The scheme incorporates a compact reconstruction with third-order accuracy for updating both cell-averaged conservative flow variables and their gradients. HWENO-type nonlinear reconstruction and gradient compression factors are adopted to improve the accuracy and robustness of the scheme. A multi-stage multi-derivative (MSMD) time-stepping method is also implemented to achieve high-order time accuracy with fewer middle stages. The scheme is used to study problems involving moving boundaries. The numerical experiments demonstrate the effectiveness of the scheme in capturing the accurate solutions of both low-speed smooth flow and highly compressible ones with strong shock waves.
format Preprint
id arxiv_https___arxiv_org_abs_2401_02157
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle High-order compact gas-kinetic scheme in arbitrary Lagrangian-Eulerian formulation
Zhang, Yue
Xu, Kun
Computational Physics
This study proposes an extension of the high-order compact gas-kinetic scheme (CGKS) to compressible flow simulation in an arbitrary Lagrangian-Eulerian (ALE) formulation in unstructured mesh. The ALE method is achieved by subdividing arbitrary mesh into tetrahedrons and integrating flux function in a local coordinate system at the cell interface to ensure geometric conservation law. The scheme incorporates a compact reconstruction with third-order accuracy for updating both cell-averaged conservative flow variables and their gradients. HWENO-type nonlinear reconstruction and gradient compression factors are adopted to improve the accuracy and robustness of the scheme. A multi-stage multi-derivative (MSMD) time-stepping method is also implemented to achieve high-order time accuracy with fewer middle stages. The scheme is used to study problems involving moving boundaries. The numerical experiments demonstrate the effectiveness of the scheme in capturing the accurate solutions of both low-speed smooth flow and highly compressible ones with strong shock waves.
title High-order compact gas-kinetic scheme in arbitrary Lagrangian-Eulerian formulation
topic Computational Physics
url https://arxiv.org/abs/2401.02157