Error analysis of an asymptotic-preserving, energy-stable finite volume method for barotropic Euler equations

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Hauptverfasser: Anandan, Megala, Arun, K. R., Krishnamurthy, Amogh, Lukáčová-Medvid'ová, Mária
Format: Preprint
Veröffentlicht: 2026
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author Anandan, Megala
Arun, K. R.
Krishnamurthy, Amogh
Lukáčová-Medvid'ová, Mária
author_facet Anandan, Megala
Arun, K. R.
Krishnamurthy, Amogh
Lukáčová-Medvid'ová, Mária
contents We design an energy-stable and asymptotic-preserving finite volume scheme for the compressible Euler system. Using the relative energy framework, we establish rigorous error estimates that yield convergence of the numerical solutions in two distinct regimes. For a fixed Mach number $\varepsilon>0$, we derive error estimates between the numerical solutions and a strong solution of the compressible Euler system that are uniform with respect to the discretisation parameters, ensuring convergence as the underlying mesh is refined. In the low Mach number regime, we analyse the error between the numerical solutions and a strong solution of the incompressible Euler system and obtain asymptotic error estimates that are uniform in $\varepsilon$ and the discretisation parameters. These results imply convergence of the numerical solutions toward a strong solution of the incompressible Euler system as $\varepsilon$, and the discretisation parameters simultaneously tend to zero. Numerical experiments are presented to validate the theoretical analysis.
format Preprint
id arxiv_https___arxiv_org_abs_2603_27421
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Error analysis of an asymptotic-preserving, energy-stable finite volume method for barotropic Euler equations
Anandan, Megala
Arun, K. R.
Krishnamurthy, Amogh
Lukáčová-Medvid'ová, Mária
Numerical Analysis
We design an energy-stable and asymptotic-preserving finite volume scheme for the compressible Euler system. Using the relative energy framework, we establish rigorous error estimates that yield convergence of the numerical solutions in two distinct regimes. For a fixed Mach number $\varepsilon>0$, we derive error estimates between the numerical solutions and a strong solution of the compressible Euler system that are uniform with respect to the discretisation parameters, ensuring convergence as the underlying mesh is refined. In the low Mach number regime, we analyse the error between the numerical solutions and a strong solution of the incompressible Euler system and obtain asymptotic error estimates that are uniform in $\varepsilon$ and the discretisation parameters. These results imply convergence of the numerical solutions toward a strong solution of the incompressible Euler system as $\varepsilon$, and the discretisation parameters simultaneously tend to zero. Numerical experiments are presented to validate the theoretical analysis.
title Error analysis of an asymptotic-preserving, energy-stable finite volume method for barotropic Euler equations
topic Numerical Analysis
url https://arxiv.org/abs/2603.27421