Publication | Open Access
Artificial dissipation and central difference schemes for the Euler and Navier-Stokes equations
182
Citations
7
References
1987
Year
Unknown Venue
Numerical AnalysisAeroacousticsEngineeringFluid MechanicsNavier-stokes EquationsCentral Difference SchemesComputational MechanicsDissipation ModelBoundary LayerArtificial DissipationUnsteady FlowNumerical SimulationHydrodynamic StabilityArtificial Dissipation ModelIncompressible FlowSemi-implicit MethodHyperbolic Conservation LawMultiphase FlowNumerical Method For Partial Differential EquationAerospace EngineeringTurbulence ModelingAerodynamicsBoundary Treatment
An artificial dissipation model, including boundary treatment, that is employed in many central difference schemes for solving the Euler and Navier-Stokes equations is discussed. Modifications of this model such as the eigenvalue scaling suggested by upwind differencing are examined. Multistage time stepping schemes with and without a multigrid method are used to investigate the effects of changes in the dissipation model on accuracy and convergence. Improved accuracy for inviscid and viscous airfoil flow is obtained with the modified eigenvalue scaling. Slower convergence rates are experienced with the multigrid method using such scaling. The rate of convergence is improved by applying a dissipation scaling function that depends on mesh cell aspect ratio.
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