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A hybrid Galerkin finite element method for seismic wave propagation in fractured media

机译:裂缝介质中地震波传播的混合动力Galerkin有限元方法

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摘要

The discontinuous Galerkin finite element method (DGM) is a promising algorithm for modelling wave propagation in fractured media. It allows for discontinuities in the displacement field to simulate fractures or faults in a model. Our approach is based on the interior-penalty formulation of DGM, and the fractures are simulated using the linear-slip model, which is incorporated into the weak formulation. On the other hand, the spectral element method (SEM) can be used to simulate elastic wave propagation in non-fractured media. SEM uses continuous basis functions which do not allow for discontinuities in the displacement field. However, the computation cost of DGM is significantly larger than SEM due primarily to increase in the number of degrees of freedom. Here we propose a hybrid Galerkin method (HGM) for elastic wave propagation in fractured media that combines the salient features of each of the algorithm resulting in significant reduction in computational cost compared to DGM. We use DGM in areas containing fractures and SEM in regions without fractures. The coupling between the domains at the interfaces is satisfied in the weak form through interface conditions. The degree of reduction in computation time depends primarily on the density of fractures in the medium. In this paper, we formulate and implement HGM for seismic wave propagation in fractured media. Using realistic 2-D/3-D numerical examples, we show that our proposed HGM outperforms DGM with reduced computation cost and memory requirement while maintaining the same level of accuracy.
机译:不连续的Galerkin有限元方法(DGM)是一种有前途的裂缝介质中波传播的有希望的算法。它允许位移场中的不连续性模拟模型中的裂缝或故障。我们的方法是基于DGM的内部罚分制剂,使用线性滑移模型模拟裂缝,该模型掺入弱配方中。另一方面,光谱元件方法(SEM)可用于模拟非裂缝介质中的弹性波传播。 SEM使用不允许在位移场中不连续的连续基函数。然而,DGM的计算成本主要大于SEM,主要是因为自由度的程度增加而来。在这里,我们提出了一种混合Galerkin方法(HGM),用于裂缝介质中的弹性波传播,其结合每个算法的突出特征,导致与DGM相比的计算成本显着降低。我们在没有骨折的区域内包含骨折和SEM的区域使用DGM。通过界面条件,界面处的域之间的域之间的耦合满足。计算时间的降低程度主要取决于介质中骨折的密度。在本文中,我们在裂缝介质中制定和实施HGM以进行地震波传播。使用现实的2-D / 3-D数值示例,我们表明我们提出的HGM优于DGM,计算成本降低和内存要求,同时保持相同的准确性水平。

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