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A coupled continuous and discontinuous finite element method for the incompressible flows

机译:用于不可压缩流动的耦合连续和不连续的有限元方法

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摘要

In this paper, we develop a coupled continuous Galerkin and discontinuous Galerkin finite element method based on a split scheme to solve the incompressible Navier-Stokes equations. In order to use the equal order interpolation functions for velocity and pressure, we decouple the original Navier-Stokes equations and obtain three distinct equations through the split method, which are nonlinear hyperbolic, elliptic, and Helmholtz equations, respectively. The hybrid method combines the merits of discontinuous Galerkin (DG) and finite element method (FEM). Therefore, DG is concerned to accomplish the spatial discretization of the nonlinear hyperbolic equation to avoid using the stabilization approaches that appeared in FEM. Moreover, FEM is utilized to deal with the Poisson and Helmholtz equations to reduce the computational cost compared with DG. As for the temporal discretization, a second-order stiffly stable approach is employed. Several typical benchmarks, namely, the Poiseuille flow, the backward-facing step flow, and the flow around the cylinder with a wide range of Reynolds numbers, are considered to demonstrate and validate the feasibility, accuracy, and efficiency of this coupled method. Copyright (C) 2016 John Wiley & Sons, Ltd.
机译:在本文中,我们开发了一种基于分离方案的耦合连续的Galerkin和不连续的Galerkin有限元方法,以解决不可压缩的Navier-Stokes方程。为了利用相等的插值函数来速度和压力,我们通过分离方法分离原始Navier-Stokes方程,并分别获得三个不同的方程,分别是非线性双曲线,椭圆形和亥姆霍兹方程。混合方法结合了不连续的Galerkin(DG)和有限元方法(FEM)的优点。因此,DG致致力于实现非线性双曲方程的空间离散化,以避免使用在FEM中出现的稳定方法。此外,有限元用来处理泊松和亥姆霍兹方程,以减少与DG相比的计算成本。对于时间离散化,采用二阶僵硬的方法。几个典型的基准,即Poiseuille流动,背面的步骤流动,以及具有宽范围雷诺数的气缸周围的流动,被认为证明并验证该耦合方法的可行性,准确性和效率。版权所有(c)2016 John Wiley&Sons,Ltd。

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