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Application of the Space-Time Conservation Element and Solution Element Method to One-Dimensional Convection-Diffusion ProblemsIn the space-time conservation element and solution element (CE/SE) method, the independent marching variables used comprise not only the mesh value of the physical dependent variables but also, in contrast to it typical numerical method, the Mesh values of the spatial derivatives of the physical variables The use of the extra marching variables results from the need to construct the two-level explicit and nondissipative schemes which are at the core of the CE/SE development. It also results from the need to minimize the stencil while maintaining accuracy. In this paper using the 1D(sub (alpha)-mu) scheme as an example, the effect of this added complication on consistency, accuracy and operation count is assessed. As part of this effort, an equivalent yet more efficient form of the alpha-mu scheme in which the independent marching variables are the local fluxes tied to each mesh point is introduced. Also, the intriguing relations that exist among the alpha-mu. Leapfrog, and DuFort-Frankel schemes are further explored. In addition, the redundance of the Leapfrog, DUFort-Frankel, and Lax scheme and the remedy for this redundance are discussed. This paper is concluded with the construction and evaluation of a CE/SE solver for the inviscid Burger equation.
Document ID
20010016661
Acquisition Source
Glenn Research Center
Document Type
Reprint (Version printed in journal)
External Source(s)
Authors
Chang, Sin-Chung
(NASA Glenn Research Center Cleveland, OH United States)
Wang, Xiao-Yen
(Taitech, Inc. Cleveland, OH United States)
To, Wai-Ming
(AP Solutions, Inc. United States)
Date Acquired
August 20, 2013
Publication Date
January 1, 2000
Publication Information
Publication: Journal of Computational Physics
Publisher: Academic Press
Volume: 165
ISSN: 0021-9991
Subject Category
Numerical Analysis
Distribution Limits
Public
Copyright
Other

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