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Implicit Space-Time Conservation Element and Solution Element SchemesArtificial numerical dissipation is in important issue in large Reynolds number computations. In such computations, the artificial dissipation inherent in traditional numerical schemes can overwhelm the physical dissipation and yield inaccurate results on meshes of practical size. In the present work, the space-time conservation element and solution element method is used to construct new and accurate implicit numerical schemes such that artificial numerical dissipation will not overwhelm physical dissipation. Specifically, these schemes have the property that numerical dissipation vanishes when the physical viscosity goes to zero. These new schemes therefore accurately model the physical dissipation even when it is extremely small. The new schemes presented are two highly accurate implicit solvers for a convection-diffusion equation. The two schemes become identical in the pure convection case, and in the pure diffusion case. The implicit schemes are applicable over the whole Reynolds number range, from purely diffusive equations to convection-dominated equations with very small viscosity. The stability and consistency of the schemes are analysed, and some numerical results are presented. It is shown that, in the inviscid case, the new schemes become explicit and their amplification factors are identical to those of the Leapfrog scheme. On the other hand, in the pure diffusion case, their principal amplification factor becomes the amplification factor of the Crank-Nicolson scheme.
Document ID
20000056868
Acquisition Source
Glenn Research Center
Document Type
Preprint (Draft being sent to journal)
Authors
Chang, Sin-Chung
(NASA Glenn Research Center Cleveland, OH United States)
Himansu, Ananda
(Taitech, Inc. Cleveland, OH United States)
Wang, Xiao-Yen
(Taitech, Inc. Cleveland, OH United States)
Date Acquired
September 7, 2013
Publication Date
January 1, 1999
Subject Category
Theoretical Mathematics
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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