首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Effects of mesoscopic-scale fault structure on dynamic earthquake ruptures: Dynamic formation of geometrical complexity of earthquake faults
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Effects of mesoscopic-scale fault structure on dynamic earthquake ruptures: Dynamic formation of geometrical complexity of earthquake faults

机译:介观尺度断层结构对动态地震破裂的影响:地震断层几何复杂度的动态形成

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We develop a new hierarchical earthquake rupture model that takes into account mesoscopic-scale fault structure; shear branches nucleated on the main fault are specifically assumed as an example of mesoscopic-scale fault structure. We numerically investigate dynamic formation of fault geometry and its effects on dynamic earthquake rupture process based on this rupture model. As long as the length of the main fault is below a certain threshold L m, the growth of these branches is shown to be arrested spontaneously soon after their nucleation. The spatial distribution of arrested branches is shown to form a self-similar geometrical structure. This suggests the existence of a simple scaling relationship between small and large events as long as the length of the main fault is below the threshold L m . However, once the length of the main fault exceeds L m , a limited number of branches begin unstable growth, and their sizes soon become comparable to that of the main fault. In other words, mesoscopic-scale branches are spontaneously transformed into macroscopic-scale ones. This finding indicates the critical importance of the consideration of mesoscopic-scale fault structure in understanding rupture dynamics: Once macroscopic-scale branches are formed, they change the fault geometry, which will considerably affect the rupture dynamics. The emergence of macroscopic branches suggests that the above mentioned simple scaling relation is never valid above a critical length L m . Our study thus indicates that relationship between small and large earthquakes is complicated by the spontaneous transformation of a mesoscopic-scale fault structure into a macroscopic-scale one.
机译:我们开发了一种新的分级地震破裂模型,该模型考虑了介观尺度的断层结构。在主断层上形核的剪切分支被特别假定为介观尺度断层结构的一个例子。基于这种破裂模型,我们数值研究了断层几何的动态形成及其对动态地震破裂过程的影响。只要主断层的长度在一定的阈值L m以下,这些分支的生长就会在成核后立即自发被阻止。示出了停滞的分支的空间分布形成自相似的几何结构。这表明只要主要断层的长度在阈值L m以下,小事件和大事件之间就存在简单的比例关系。但是,一旦主断层的长度超过L m,有限数量的分支开始不稳定增长,并且它们的大小很快就会变得与主断层相当。换句话说,介观尺度的分支会自发地转换为宏观尺度的分支。这一发现表明,考虑细观尺度的断层结构对于理解破裂动力学至关重要:一旦形成宏观尺度的分支,它们就会改变断层的几何形状,这将极大地影响破裂动力学。宏观分支的出现表明,上述简单的比例关系在临界长度L m以上永远无效。因此,我们的研究表明,大地震和大地震之间的关系由于介观尺度断层结构自发转变为宏观尺度断层结构而变得复杂。

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