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首页> 外文期刊>Geophysics: Journal of the Society of Exploration Geophysicists >Optimizing the finite-difference implementation of three-dimensional free-surface boundary in frequency-domain modeling of elastic waves
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Optimizing the finite-difference implementation of three-dimensional free-surface boundary in frequency-domain modeling of elastic waves

机译:优化弹性波频域建模三维自由表面边界的有限差分实现

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摘要

The problem of modeling seismic wave propagation for multiple sources, such as in the solution of gradient-based elastic full-waveform inversion, is an important topic in seismic exploration. The frequency-domain finite-difference (FD) method is a good choice for this purpose, mainly because of its simple discretization and high computational efficiency. However, when it comes to modeling the complete elastic wavefields, this approach has limited surface-wave accuracy because, when modeling with the strong form of the wave equation, it is not always easy to implement an accurate stress-free boundary condition. Although a denser spatial sampling is helpful for overcoming this problem, the additional discrete points will significantly increase the computational cost in the resolution of its resulting discrete system, especially in 3D problems. Furthermore, sometimes, when modeling with optimized schemes, an inconsistency in the computation precision between the regions at the free surface and inside the model volume would happen and introduce numerical artifacts. To overcome these issues, we have considered optimizing the FD implementation of the free-surface boundary. In our method, the problem was formulated in terms of a novel system of partial differential equations satisfied at the free surface, and the weighted-averaging strategy was introduced to optimize its discretization. With this approach, we can impose FD schemes for the free surface and internal region consistently and improve their discretization precision simultaneously. Benchmark tests for Lamb's problem indicate that the proposed free-surface implementation contributes to improving the simulation accuracy on surface waves, without increasing the number of grid points per wavelength. This reveals the potential of developing optimized schemes in the free-surface implementation. In particular, through the successful introduction of weighting coefficients, this free-surface FD implementation enables adaptation to the variation of Poisson's ratio, which is very useful for modeling in heterogeneous near-surface weathered zones.
机译:多种源模拟地震波传播的问题,例如在基于梯度的弹性全波形反演的解决方案中,是地震勘探中的一个重要主题。频率域有限差分(FD)方法是为此目的的良好选择,主要是因为其简单的离散化和高计算效率。然而,当谈到建模完整的弹性波场时,这种方法具有有限的表面波精度,因为,当用波方向的强形式建模时,实施准确的无应力边界条件并不总是容易。虽然更密集的空间采样有助于克服这个问题,但是额外的离散点将在其由此产生的离散系统的分辨率下显着提高计算成本,特别是在3D问题中。此外,有时,当用优化方案建模时,在自由表面和模型体积内的区域之间的计算精度之间的计算精度不一致并引入数值伪像。为了克服这些问题,我们已经考虑了优化了自由表面边界的FD实现。在我们的方法中,在自由表面满足的部分微分方程的新系统方面配制了该问题,并引入了加权平均策略以优化其离散化。通过这种方法,我们可以始终如一地施加自由表面和内部区域的FD方案,同时提高它们的离散化精度。 LAMB问题的基准测试表明,所提出的自由表面实现有助于提高表面波上的模拟精度,而不增加每个波长的网格点数。这揭示了在自由表面实现中开发优化方案的潜力。特别是,通过成功引入加权系数,这种自由表面FD实现能够适应泊松比的变化,这对于在异质近表面风化区域中建模非常有用。

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