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Conservative-variable average states for equilibrium gas multi-dimensional fluxesModern split component evaluations of the flux vector Jacobians are thoroughly analyzed for equilibrium-gas average-state determinations. It is shown that all such derivations satisfy a fundamental eigenvalue consistency theorem. A conservative-variable average state is then developed for arbitrary equilibrium-gas equations of state and curvilinear-coordinate fluxes. Original expressions for eigenvalues, sound speed, Mach number, and eigenvectors are then determined for a general average Jacobian, and it is shown that the average eigenvalues, Mach number, and eigenvectors may not coincide with their classical pointwise counterparts. A general equilibrium-gas equation of state is then discussed for conservative-variable computational fluid dynamics (CFD) Euler formulations. The associated derivations lead to unique compatibility relations that constrain the pressure Jacobian derivatives. Thereafter, alternative forms for the pressure variation and average sound speed are developed in terms of two average pressure Jacobian derivatives. Significantly, no additional degree of freedom exists in the determination of these two average partial derivatives of pressure. Therefore, they are simultaneously computed exactly without any auxiliary relation, hence without any geometric solution projection or arbitrary scale factors. Several alternative formulations are then compared and key differences highlighted with emphasis on the determination of the pressure variation and average sound speed. The relevant underlying assumptions are identified, including some subtle approximations that are inherently employed in published average-state procedures. Finally, a representative test case is discussed for which an intrinsically exact average state is determined. This exact state is then compared with the predictions of recent methods, and their inherent approximations are appropriately quantified.
Document ID
19920015953
Acquisition Source
Legacy CDMS
Document Type
Technical Memorandum (TM)
Authors
Iannelli, G. S.
(Tennessee Univ. Knoxville., United States)
Date Acquired
September 6, 2013
Publication Date
March 1, 1992
Subject Category
Fluid Mechanics And Heat Transfer
Report/Patent Number
ICOMP-92-05
NAS 1.15:105585
E-6913
NASA-TM-105585
Report Number: ICOMP-92-05
Report Number: NAS 1.15:105585
Report Number: E-6913
Report Number: NASA-TM-105585
Accession Number
92N25196
Funding Number(s)
PROJECT: RTOP 505-12-21
CONTRACT_GRANT: NASA ORDER C-99066-G
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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