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Preconditioning applied to variable and constant density flows

AIAA Journal · 1995 · Vol. 33(11) · pp. 2050–2057
Jonathan M. WeissWayne A. Smith

Abstract

A time-derivative preconditioning of the Navier-Stokes equations, suitable for both variable and constant density fluids, is developed. The ideas of low-Mach-number preconditioning and artificial compressibility are combined into a unified approach designed to enhance convergence rates of density-based, time-marching schemes for solving flows of incompressible and variable density fluids at all speeds. The preconditioning is coupled with a dual time-stepping scheme implemented within an explicit, multistage algorithm for solving time-accurate flows. The resultant time integration scheme is used in conjunction with a finite volume discretization designed for unstructured, solution-adaptive mesh topologies. This method is shown to provide accurate steady-state solutions for transonic and low-speed flow of variable density fluids. The time-accurate solution of unsteady, incompressible flow is also demonstrated.

Computational Fluid Dynamics and AerodynamicsFluid Dynamics and Turbulent FlowsAdvanced Numerical Methods in Computational MathematicsConstant (computer programming)MechanicsVariable (mathematics)PhysicsMathematicsMathematical analysisComputer science

Funding

  • U.S. Department of Defense
  • National Aeronautics and Space Administration
Citations
967
FWCI
7.08
field-weighted impact
References
23
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97%
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References
The numerical computation of turbulent flows
Computer Methods in Applied Mechanics and Engineering · 1974 · 12,513 citations
A Numerical Method for Solving Incompressible Viscous Flow Problems
Journal of Computational Physics · 1997 · 2,450 citations
A numerical method for solving incompressible viscous flow problems
Journal of Computational Physics · 1967 · 2,301 citations
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Preconditioning applied to variable and constant density flows · Scinovex