Title of article :
Comparison of Several Spatial Discretizations for the Navier–Stokes Equations
Author/Authors :
Zingg، نويسنده , , D.W. and De Rango، نويسنده , , S. and Nemec، نويسنده , , Tiffany M. and Pulliam، نويسنده , , T.H.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2000
Pages :
22
From page :
683
To page :
704
Abstract :
Grid convergence studies for subsonic and transonic flows over airfoils are presented in order to compare the accuracy of several spatial discretizations for the compressible Navier–Stokes equations. The discretizations include the following schemes for the inviscid fluxes: (1) second-order-accurate centered differences with third-order matrix numerical dissipation, (2) the second-order convective upstream split pressure scheme (CUSP), (3) third-order upwind-biased differencing with Roeʹs flux-difference splitting, and (4) fourth-order centered differences with third-order matrix numerical dissipation. The first three are combined with second-order differencing for the grid metrics and viscous terms. The fourth discretization uses fourth-order differencing for the grid metrics and viscous terms, as well as higher-order approximations near boundaries and for the numerical integration used to calculate forces and moments. The results indicate that the discretization using higher-order approximations for all terms is substantially more accurate than the others, producing less than two percent numerical error in lift and drag components on grids with less than 13,000 nodes for subsonic cases and less than 18,000 nodes for transonic cases. Since the cost per grid node of all of the discretizations studied is comparable, the higher-order discretization produces solutions of a given accuracy much more efficiently than the others.
Journal title :
Journal of Computational Physics
Serial Year :
2000
Journal title :
Journal of Computational Physics
Record number :
1476144
Link To Document :
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