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A degree adaptive Hybridizable Discontinuous Galerkin (HDG) method for the solution of the incompressible Navier Stokes equations is presented.
A spectral method for the solution of the incompressible Navier-Stokes equations in spherical-gap geometries is presented.
This paper presents an implicit procedure for the solution of the incompressible Navier-Stokes equations in primitive variables.
A new pressure formulation for splitting methods is developed that results in high-order time-accurate schemes for the solution of the incompressible Navier-Stokes equations.
The numerical investigation of a recent family of algebraic fractional-step methods for the solution of the incompressible time-dependent Navier Stokes equations is presented.
A generic particle mesh method using a hybridized discontinuous Galerkin (HDG) framework is presented and validated for the solution of the incompressible Navier Stokes equations.
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Fig. 4 compares the error of the penalty and weakly penalized methods in the solution of the incompressible elongation problem measured over the entire domain as well as a horizontal patch excluding the corners (where singularities in the solution occur).
In this paper a finite difference method for computing the solutions of the incompressible Navier Stokes equations for flow about a circular cylinder in two dimensions is presented.
Parallel algorithms of the Fourier pseudospectral method are presented for the solution of the unsteady, incompressible Navier-Stokes equations.
This paper presents a new fully implicit procedure for the solution of the steady incompressible Navier-Stokes equations in primitive variables.
In this paper we present a new primitive variable method for the solution of the three-dimensional, incompressible, Reynolds averaged Navier-Stokes equations in generalized curvilinear coordinates.
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