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Influence of numerical dissipation in computing supersonic vortex-dominated flowsSteady supersonic vortex-dominated flows are solved using the unsteady Euler equations for conical and three-dimensional flows around sharp- and round-edged delta wings. The computational method is a finite-volume scheme which uses a four-stage Runge-Kutta time stepping with explicit second- and fourth-order dissipation terms. The grid is generated by a modified Joukowski transformation. The steady flow solution is obtained through time-stepping with initial conditions corresponding to the freestream conditions, and the bow shock is captured as a part of the solution. The scheme is applied to flat-plate and elliptic-section wings with a leading edge sweep of 70 deg at an angle of attack of 10 deg and a freestream Mach number of 2.0. Three grid sizes of 29 x 39, 65 x 65 and 100 x 100 have been used. The results for sharp-edged wings show that they are consistent with all grid sizes and variation of the artificial viscosity coefficients. The results for round-edged wings show that separated and attached flow solutions can be obtained by varying the artificial viscosity coefficients. They also show that the solutions are independent of the way time stepping is done. Local time-stepping and global minimum time-steeping produce same solutions.
Document ID
19860053701
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Kandil, O. A.
(Old Dominion Univ. Norfolk, VA, United States)
Chuang, A.
(Old Dominion University Norfolk, VA, United States)
Date Acquired
August 12, 2013
Publication Date
May 1, 1986
Subject Category
Aerodynamics
Report/Patent Number
AIAA PAPER 86-1073
Accession Number
86A38439
Funding Number(s)
CONTRACT_GRANT: NAG1-648
CONTRACT_GRANT: NAG1-591
Distribution Limits
Public
Copyright
Other

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