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Numerical Simulation of Fault Zone Guided Waves: Accuracy and 3-D Effects

机译:断层导波的数值模拟:精度和3-D效应

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摘要

— Fault zones are thought to consist of regions with reduced seismic velocity. When sources are located in or close to these low-velocity zones, guided seismic head and trapped waves are generated which may be indicative of the structure of fault zones at depth. Observations above several fault zones suggest that they are common features of near fault radiation, yet their interpretation may be highly ambiguous. Analytical methods have been developed to calculate synthetic seismograms for sources in fault zones as well as at the material discontinuities. These solutions can be used for accurate modeling of wave propagation in plane-parallel layered fault zone structures. However, at present it is not clear how modest deviations from such simplified geometries affect the generation efficiency and observations of trapped wave motion. As more complicated models cannot be solved by analytical means, numerical methods must be employed. In this paper we discuss 3-D finite-difference calculations of waves in modestly irregular fault zone structures. We investigate the accuracy of the numerical solutions for sources at material interfaces and discuss some dominant effects of 3-D structures. We also show that simple mathematical operations on 2-D solutions generated with line sources allow accurate modeling of 3-D wave propagation produced by point sources. The discussed simulations indicate that structural discontinuities of the fault zone (e.g., fault offsets) larger than the fault zone width affect significantly the trapping efficiency, while vertical properly gradients, fault zone narrowing with depth, small-scale structures, and moderate geometrical variations do not. The results also show that sources located with appropriate orientations outside and below a shallow fault zone layer can produce considerable guided wave energy in the overlying fault zone layer.
机译:—断层带被认为是地震速度降低的区域。当震源位于这些低速带中或附近时,会产生引导的地震波头和陷波,这可能表示深处的断层带结构。在几个断裂带上方的观测表明,它们是近断层辐射的共同特征,但对它们的解释可能非常模棱两可。已经开发出分析方法来计算断层带和材料间断源的合成地震图。这些解决方案可用于在平面平行的分层断层带结构中对波传播进行精确建模。但是,目前尚不清楚与这种简化几何形状的适度偏差如何影响发电效率和对捕获波运动的观测。由于无法通过分析手段解决更复杂的模型,因此必须采用数值方法。在本文中,我们讨论了适度不规则断层带结构中波的3-D有限差分计算。我们研究了材料界面处源数值解的准确性,并讨论了3D结构的一些主要影响。我们还显示,对通过线源生成的2-D解进行简单的数学运算可以对点源产生的3-D波传播进行精确建模。讨论的模拟结果表明,断层带的结构不连续性(例如断层偏移量)大于断层带宽度会显着影响捕集效率,而垂直适当的坡度,断层带随深度变窄,小规模结构以及适度的几何变化确实会不。结果还表明,在浅断层带内外下方以适当方向定位的震源可以在上覆断层带内产生大量的导波能量。

著录项

  • 来源
    《Pure and Applied Geophysics》 |2002年第9期|2067-2083|共17页
  • 作者

    H. Igel; G. Jahnke; Y. Ben-Zion;

  • 作者单位

    Institut für Geophysik Ludwig-Maximilians-Universität Theresienstrasse 41 80333 Munich Germany. E-mails: igel@geophysik.uni-muenchen.de;

    jahnke@geophysik.uni-muenchen.de;

    Institut für Geophysik Ludwig-Maximilians-Universität Theresienstrasse 41 80333 Munich Germany. E-mails: igel@geophysik.uni-muenchen.de;

    jahnke@geophysik.uni-muenchen.de;

    Department of Earth Sciences University of Sourthern California Los Angeles U.S.A. E-mail: benzion@terra.usc.edu;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Key words: Fault zones; guided waves; finite differences.;

    机译:关键字:断层带;导波有限的差异。;

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