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A nearly analytic exponential time difference method for solving 2D seismic wave equations

机译:二维地震波方程的近似解析指数时差方法

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Abstract In this paper, we propose a nearly analytic exponential time difference (NETD) method for solving the 2D acoustic and elastic wave equations. In this method, we use the nearly analytic discrete operator to approximate the high-order spatial differential operators and transform the seismic wave equations into semi-discrete ordinary differential equations (ODEs). Then, the converted ODE system is solved by the exponential time difference (ETD) method. We investigate the properties of NETD in detail, including the stability condition for 1-D and 2-D cases, the theoretical and relative errors, the numerical dispersion relation for the 2-D acoustic case, and the computational efficiency. In order to further validate the method, we apply it to simulating acoustic/elastic wave propagation in multilayer models which have strong contrasts and complex heterogeneous media, e.g., the SEG model and the Marmousi model. From our theoretical analyses and numerical results, the NETD can suppress numerical dispersion effectively by using the displacement and gradient to approximate the high-order spatial derivatives. In addition, because NETD is based on the structure of the Lie group method which preserves the quantitative properties of differential equations, it can achieve more accurate results than the classical methods.
机译:摘要本文提出了一种求解二维声波和弹性波方程的近似解析指数时差(NETD)方法。在这种方法中,我们使用近似解析的离散算子来近似高阶空间微分算子,并将地震波方程转换为半离散的常微分方程(ODE)。然后,通过指数时差(ETD)方法求解转换后的ODE系统。我们详细研究了NETD的特性,包括一维和二维情况的稳定性条件,理论和相对误差,二维声学情况下的数值色散关系以及计算效率。为了进一步验证该方法,我们将其应用于模拟声波/弹性波在多层模型中的传播,这些模型具有很强的对比度和复杂的异构介质,例如SEG模型和Marmousi模型。从我们的理论分析和数值结果来看,NETD可以通过使用位移和梯度近似高阶空间导数来有效地抑制数值离散。此外,由于NETD基于保留了微分方程定量性质的李群方法的结构,因此与传统方法相比,它可以实现更准确的结果。

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