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Analysis of a stabilized finite element approximation of the transient convection-diffusion equation using an ALE framework

机译:使用ALE框架分析瞬态对流扩散方程的稳定有限元逼近

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In this paper we analyze a stabilized finite element method to approximate the convection-diffusion equation on moving domains using an arbitrary Lagrangian Eulerian (ALE) framework. As basic numerical strategy, we discretize the equation in time using first and second order backward differencing (BDF) schemes, whereas space is discretized using a stabilized finite element method (the orthogonal subgrid scale formulation) to deal with convection dominated flows. The semidiscrete problem (continuous in space) is first analyzed. In this situation it is easy to identify the error introduced by the ALE approach. After that, the fully discrete method is considered. We obtain optimal error estimates in both space and time in a mesh dependent norm. The analysis reveals that the ALE approach introduces an upper bound for the time step size for the results to hold. The results obtained for the fully discretized second order scheme ( in time) are associated to a weaker norm than the one used for the first order method. Nevertheless, optimal convergence results have been proved. For fixed domains, we recover stability and convergence results with the strong norm for the second order scheme, stressing the aspects that make the analysis of this method much more involved.
机译:在本文中,我们使用任意拉格朗日欧拉(ALE)框架分析了一种稳定有限元方法,以逼近运动域上的对流扩散方程。作为基本的数值策略,我们使用一阶和二阶后向差分(BDF)方案及时离散方程,而使用稳定有限元方法(正交子网格比例公式)离散空间以处理对流占主导地位的流动。首先分析半离散问题(在空间上连续)。在这种情况下,很容易识别ALE方法引入的错误。之后,考虑完全离散的方法。我们在网格依赖的范式中获得了在空间和时间上的最佳误差估计。分析表明,ALE方法为要保留的结果引入了时间步长的上限。完全离散的二阶方案(按时间)获得的结果与比一阶方法所用的规范更弱的规范相关。然而,已经证明了最佳收敛结果。对于固定域,我们以强大的二阶方案范数​​来恢复稳定性和收敛性结果,并着重强调使该方法的分析更加复杂的方面。

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