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Discontinuous Galerkin Methods for NonLinear Differential SystemsThis talk considers simplified finite element discretization techniques for first-order systems of conservation laws equipped with a convex (entropy) extension. Using newly developed techniques in entropy symmetrization theory, simplified forms of the discontinuous Galerkin (DG) finite element method have been developed and analyzed. The use of symmetrization variables yields numerical schemes which inherit global entropy stability properties of the PDE (partial differential equation) system. Central to the development of the simplified DG methods is the Eigenvalue Scaling Theorem which characterizes right symmetrizers of an arbitrary first-order hyperbolic system in terms of scaled eigenvectors of the corresponding flux Jacobian matrices. A constructive proof is provided for the Eigenvalue Scaling Theorem with detailed consideration given to the Euler equations of gas dynamics and extended conservation law systems derivable as moments of the Boltzmann equation. Using results from kinetic Boltzmann moment closure theory, we then derive and prove energy stability for several approximate DG fluxes which have practical and theoretical merit.
Document ID
20010097734
Acquisition Source
Ames Research Center
Document Type
Conference Paper
Authors
Barth, Timothy
(NASA Ames Research Center Moffett Field, CA United States)
Mansour, Nagi
Date Acquired
August 20, 2013
Publication Date
January 2, 2001
Subject Category
Numerical Analysis
Meeting Information
Meeting: Oxford ICFD Conference
Location: Oxford
Country: United Kingdom
Start Date: March 24, 2001
End Date: March 28, 2001
Funding Number(s)
PROJECT: RTOP 519-40-12
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.

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