Entropy stable discontinuous interfaces coupling for the three-dimensional compressible Navier–Stokes equations

Non-linear entropy stability and a summation-by-parts (SBP) framework are used to derive entropy stable interior interface coupling for the semi-discretized three-dimensional (3D) compressible Navier-Stokes equations. A complete semidiscrete entropy estimate for the interior domain is achieved combi...

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Veröffentlicht in:Journal of computational physics 2015-06, Vol.290, p.132-138
Hauptverfasser: Parsani, Matteo, Carpenter, Mark H., Nielsen, Eric J.
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Sprache:eng
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Zusammenfassung:Non-linear entropy stability and a summation-by-parts (SBP) framework are used to derive entropy stable interior interface coupling for the semi-discretized three-dimensional (3D) compressible Navier-Stokes equations. A complete semidiscrete entropy estimate for the interior domain is achieved combining a discontinuous entropy conservative operator of any order [1,2] with an entropy stable coupling condition for the inviscid terms, and a local discontinuous Galerkin (LDG) approach with an interior penalty (IP) procedure for the viscous terms. The viscous penalty contributions scale with the inverse of the Reynolds number (Re) so that for Re arrow right [infinity] their contributions vanish and only the entropy stable inviscid interface penalty term is recovered. This paper extends the interface couplings presented [1,2] and provides a simple and automatic way to compute the magnitude of the viscous IP term. The approach presented herein is compatible with any diagonal norm summation-by-parts (SBP) spatial operator, including finite element, finite volume, finite difference schemes and the class of high-order accurate methods which include the large family of discontinuous Galerkin discretizations and flux reconstruction schemes.
ISSN:0021-9991
1090-2716
DOI:10.1016/j.jcp.2015.02.042