不规则极坐标系下的弹性仿真方法

IF 0.7 4区 地球科学 Q4 GEOCHEMISTRY & GEOPHYSICS
Yu Yang, Qi Ran, Kang Chen, Cheng Lei, Yu-sheng Zhang, Song Han
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引用次数: 0

摘要

在模拟隧道、钻孔等特殊结构中地震波的传播时,极坐标系统的有限差分正演比传统的笛卡尔系统具有更高的精度。在实际情况中,极空间是最不规则的。为了解决这一问题,提出了一种不规则极坐标系下的正演建模方法,提高了仿真精度。首先,将不规则的极空间表面网格化成不规则的极系统。变换后,将波动面映射为平面面,在不规则极坐标系下计算波场。采用列别捷夫交错网格法求解了不规则极系统中的波动方程。此外,采用人工吸收边界、圆柱自由边界和周向边界条件对边界反射进行吸收。我们选择了三个极空间模型来演示本文的新方法。结果表明,所提出的不规则极坐标系下的弹性模拟方法对不规则极空间中地震波传播的模拟结果更为准确和稳定。弹性全波形反演进一步表明,不规则极系统弹性模拟方法可以准确模拟起伏极空间中的波场。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Elastic simulation method in an irregular polar coordinate system

When simulating the propagation of seismic waves in some special structures, such as tunnels and boreholes, finite difference forward modeling in the polar system has higher accuracy than the traditional Cartesian system. In actual situations, the polar space is the most irregular. To solve this problem, a forward modeling method for an irregular polar coordinate system is proposed to improve the simulation accuracy. First, an irregular surface of the polar space was meshed into an irregular polar system. After the transformation, the undulating surface was mapped into a plane one, and the wavefield was then computed in an irregular polar system. The Lebedev staggered grid was used to solve the wave equations in the irregular polar system. In addition, the artificial absorption boundary, cylindrical free boundary, and circumferential boundary conditions were used to absorb the boundary reflection. We selected three polar space models to demonstrate the new method in this study. The results show that the proposed elastic simulation method in an irregular polar coordinate system can produce more accurate and stable simulation results when modeling seismic wave propagation in an irregular polar space. Elastic full waveform inversion further shows that the irregular polar system elastic simulation method can accurately simulate the wavefield in an undulating polar space.

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来源期刊
Applied Geophysics
Applied Geophysics 地学-地球化学与地球物理
CiteScore
1.50
自引率
14.30%
发文量
912
审稿时长
2 months
期刊介绍: The journal is designed to provide an academic realm for a broad blend of academic and industry papers to promote rapid communication and exchange of ideas between Chinese and world-wide geophysicists. The publication covers the applications of geoscience, geophysics, and related disciplines in the fields of energy, resources, environment, disaster, engineering, information, military, and surveying.
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