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A fast, time-accurate unsteady full potential schemeThe unsteady form of the full potential equation is solved in conservation form by an implicit method based on approximate factorization. At each time level, internal Newton iterations are performed to achieve time accuracy and computational efficiency. A local time linearization procedure is introduced to provide a good initial guess for the Newton iteration. A novel flux-biasing technique is applied to generate proper forms of the artificial viscosity to treat hyperbolic regions with shocks and sonic lines present. The wake is properly modeled by accounting not only for jumps in phi, but also for jumps in higher derivatives of phi, obtained by imposing the density to be continuous across the wake. The far field is modeled using the Riemann invariants to simulate nonreflecting boundary conditions. The resulting unsteady method performs well which, even at low reduced frequency levels of 0.1 or less, requires fewer than 100 time steps per cycle at transonic Mach numbers. The code is fully vectorized for the CRAY-XMP and the VPS-32 computers.
Document ID
19850058796
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Shankar, V.
(Rockwell International Science Center Thousand Oaks, CA, United States)
Ide, H.
(Rockwell International Science Center Thousand Oaks, CA, United States)
Gorski, J.
(Rockwell International Science Center Thousand Oaks, CA, United States)
Osher, S.
(California, University Los Angeles, United States)
Date Acquired
August 12, 2013
Publication Date
January 1, 1985
Subject Category
Computer Programming And Software
Report/Patent Number
AIAA PAPER 85-1512
Meeting Information
Meeting: Computational Fluid Dynamics Conference
Location: Cincinnati, OH
Start Date: July 15, 1985
End Date: July 17, 1985
Accession Number
85A40947
Funding Number(s)
CONTRACT_GRANT: NAS1-15820
Distribution Limits
Public
Copyright
Other

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