Asymptotic preserving finite volume method for the compressible Euler equations: analysis via dissipative measure-valued solutions

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Arun, K. R., Krishnamurthy, Amogh, Lukáčová-Medvid'ová, Mária
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866913434961969152
author Arun, K. R.
Krishnamurthy, Amogh
Lukáčová-Medvid'ová, Mária
author_facet Arun, K. R.
Krishnamurthy, Amogh
Lukáčová-Medvid'ová, Mária
contents We propose and analyze a new asymptotic preserving (AP) finite volume scheme for the multidimensional compressible barotropic Euler equations to simulate low Mach number flows. The proposed scheme uses a stabilized upwind numerical flux, with the stabilization term being proportional to the stiff pressure gradient, and we prove its conditional energy stability and consistency. Utilizing the concept of dissipative measure-valued (DMV) solutions, we rigorously illustrate the AP properties of the scheme for well-prepared initial data. In particular, we prove that the numerical solutions will converge weakly to a DMV solution of the compressible Euler equations as the mesh parameter vanishes, while the Mach number is fixed. The DMV solutions then converge to a classical solution of the incompressible Euler system as the Mach number goes to zero. Conversely, we show that if the mesh parameter is kept fixed, we obtain an energy stable and consistent finite-volume scheme approximating the incompressible Euler equations as the Mach number goes to zero. The numerical solutions generated by this scheme then converge weakly to a DMV solution of the incompressible Euler system as the mesh parameter vanishes. Invoking the weak-strong uniqueness principle, we conclude that the DMV solution and classical solution of the incompressible Euler system coincide, proving the AP property of the scheme. We also present an extensive numerical case study in order to illustrate the theoretical convergences, wherein we utilize the techniques of K-convergence.
format Preprint
id arxiv_https___arxiv_org_abs_2405_05685
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Asymptotic preserving finite volume method for the compressible Euler equations: analysis via dissipative measure-valued solutions
Arun, K. R.
Krishnamurthy, Amogh
Lukáčová-Medvid'ová, Mária
Numerical Analysis
35D99, 35L45, 35L65, 35Q31, 35R06, 65M08, 76M12
We propose and analyze a new asymptotic preserving (AP) finite volume scheme for the multidimensional compressible barotropic Euler equations to simulate low Mach number flows. The proposed scheme uses a stabilized upwind numerical flux, with the stabilization term being proportional to the stiff pressure gradient, and we prove its conditional energy stability and consistency. Utilizing the concept of dissipative measure-valued (DMV) solutions, we rigorously illustrate the AP properties of the scheme for well-prepared initial data. In particular, we prove that the numerical solutions will converge weakly to a DMV solution of the compressible Euler equations as the mesh parameter vanishes, while the Mach number is fixed. The DMV solutions then converge to a classical solution of the incompressible Euler system as the Mach number goes to zero. Conversely, we show that if the mesh parameter is kept fixed, we obtain an energy stable and consistent finite-volume scheme approximating the incompressible Euler equations as the Mach number goes to zero. The numerical solutions generated by this scheme then converge weakly to a DMV solution of the incompressible Euler system as the mesh parameter vanishes. Invoking the weak-strong uniqueness principle, we conclude that the DMV solution and classical solution of the incompressible Euler system coincide, proving the AP property of the scheme. We also present an extensive numerical case study in order to illustrate the theoretical convergences, wherein we utilize the techniques of K-convergence.
title Asymptotic preserving finite volume method for the compressible Euler equations: analysis via dissipative measure-valued solutions
topic Numerical Analysis
35D99, 35L45, 35L65, 35Q31, 35R06, 65M08, 76M12
url https://arxiv.org/abs/2405.05685