无穷小应变理论中的静态非平面断层力学

IF 2.8 3区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS Geophysical Journal International Pub Date : 2024-09-13 DOI:10.1093/gji/ggae337
Pierre ROMANET, Tatsuhiko SAITO, Eiichi FUKUYAMA
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引用次数: 0

摘要

摘要 断层几何形状是控制断层力学的关键因素。然而,目前有关非平面断层几何对地震力学影响的理论知识还很有限。在此,我们针对这一空白,引入了断层牵引力与滑移之间关系的二阶扩展,即相对于平面断层几何的偏差。这种扩展可以将非平面性的影响与平面断层的影响区分开来。假设断层坡度较小,这种扩展在边界积分方程中得以实现。对于任何断层几何形状和任何滑移分布,它都能解释复杂断层几何形状对断层牵引力的影响。因此,结果也与断层上的摩擦力无关。研究结果证实,断层几何形状对平面内断层(模式 II)有很大影响,它改变了断层的法向牵引力,使其在任何断层几何形状下都更耐滑。相反,对于平面外断层(模式 III),断层几何的影响要小得多。此外,我们还分析了地震模拟中常用的特定断层几何形状所产生的一些奇异现象,并提供了消除这些现象的指导原则。最后,我们讨论了无穷小应变理论在考虑非平面断层时的局限性。
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The mechanics of static non-planar faults in infinitesimal strain theory
Summary Fault geometry is a key factor in controling the mechanics of faulting. However, there is currently limited theoretical knowledge regarding the effect of non-planar fault geometry on earthquake mechanics. Here, we address this gap by introducing an expansion of the relation between fault traction and slip, up to second order, relative to the deviation from a planar fault geometry. This expansion enables the separation of the effects of non-planarities from those of planar faults. This expansion is realised in the boundary integral equation, assuming a small fault slope. It provides an interpretation for the effect of complex fault geometry on fault traction, for any fault geometry and any slip distribution. Hence the results are also independent of the friction that applies on the fault. The findings confirm that fault geometry has a strong influence on in-plane faulting (mode II) by altering the normal traction on the fault and making it more resistant to slipping for any fault geometry. On the contrary, for out-of-plane faulting (mode III), fault geometry has a much smaller influence. Additionally, we analyse some singularities that arise for specific fault geometries often used in earthquake simulations and provide guidelines for their elimination. To conclude this study, we discuss the limits of the infinitesimal strain theory when non-planar faults are considered.
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来源期刊
Geophysical Journal International
Geophysical Journal International 地学-地球化学与地球物理
CiteScore
5.40
自引率
10.70%
发文量
436
审稿时长
3.3 months
期刊介绍: Geophysical Journal International publishes top quality research papers, express letters, invited review papers and book reviews on all aspects of theoretical, computational, applied and observational geophysics.
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