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Main Authors: Gogoi, A., Mandal, J. C.
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2411.09509
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author Gogoi, A.
Mandal, J. C.
author_facet Gogoi, A.
Mandal, J. C.
contents This paper compares the HLLEM and HLL-CPS schemes for Euler equations and proposes improvements for all Mach number flows. Enhancements to the HLLEM scheme involve adding anti-diffusion terms in the face normal direction and modifying anti-diffusion coefficients for linearly degenerate waves near shocks. The HLL-CPS scheme is improved by adjusting anti-diffusion coefficients for the face normal direction and linearly degenerate waves. Matrix stability, linear perturbation, and asymptotic analyses demonstrate the robustness of the proposed schemes and their ability to capture low Mach flow features. Numerical tests confirm that the schemes are free from shock instabilities at high speeds and accurately resolve low Mach number flow features.
format Preprint
id arxiv_https___arxiv_org_abs_2411_09509
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Enhanced HLLEM and HLL-CPS schemes for all Mach number flows based using anti-diffusion coefficients
Gogoi, A.
Mandal, J. C.
Numerical Analysis
Computational Physics
This paper compares the HLLEM and HLL-CPS schemes for Euler equations and proposes improvements for all Mach number flows. Enhancements to the HLLEM scheme involve adding anti-diffusion terms in the face normal direction and modifying anti-diffusion coefficients for linearly degenerate waves near shocks. The HLL-CPS scheme is improved by adjusting anti-diffusion coefficients for the face normal direction and linearly degenerate waves. Matrix stability, linear perturbation, and asymptotic analyses demonstrate the robustness of the proposed schemes and their ability to capture low Mach flow features. Numerical tests confirm that the schemes are free from shock instabilities at high speeds and accurately resolve low Mach number flow features.
title Enhanced HLLEM and HLL-CPS schemes for all Mach number flows based using anti-diffusion coefficients
topic Numerical Analysis
Computational Physics
url https://arxiv.org/abs/2411.09509