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Dynamic Modeling of Earthquake Sources on Rough Faults

机译:粗糙断层地震源的动态建模

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摘要

Surface roughness is a universal characteristic of natural faults. Roughness can be represented statistically as a random field that is approximately self-similar over many orders of magnitude in scale-length with a ratio of amplitude to length scale that typically falls into the range 10--3 to 10--2. Incorporating realistic rough fault surface into 3D numerical simulations of earthquake dynamic rupture provides guidance to build kinematic rupture generator.;We have built a database of more than 1000 simulations of 3D strike slip dynamic rupture for different realizations of rough fault surfaces at different fault roughness levels. We first have explored the role of the fault roughness in influencing the 1-point and 2-point statistics of earthquake source parameters such as rupture velocity, peak slip rate, total slip, and slip rise time. Fault roughness reduces the amplitudes of rupture velocity, peak slip rate, rise time and total slip.;Then, we have extended our study to assess supershear transition mechanisms that operate in 3D on rough faults and what factors contribute to the frequency of occurrence and spatial extent of supershear rupture episodes. We have reconciled the conflict that the supershear is favored by fault roughness from 2D numerical simulation (Bruhat et al., 2016) and unfavored by fault roughness from field observations (Bouchon et al., 2010) by dividing supershear into two types supershear transitions: free surface supershear transition and buried supershear transition.;Finally, we have investigated how well simulated earthquake behaviors on rough fault relate to direct geological observations, such as free surface lateral slip, plastic strain, and shallow slip deficits. We have found that fault roughness in the form of a power law leads to self-affine surface lateral slip, which is in agreement with recent optical imaging observations in the 1992 Landers earthquake (Milliner et al., 2015). Also fault roughness tends to produce individual events with large shallow slip decits, which may help explain the suggestion that has been made, based on a small number of earthquakes, that the SSD tends to be larger on immature faults. xix.
机译:表面粗糙度是自然断层的普遍特征。粗糙度可以在统计学上表示为一个随机域,该随机域在标度长度的多个数量级上近似自相似,其幅度与长度标度之比通常落在10--3至10--2的范围内。将逼真的粗糙断层表面纳入地震动态破裂的3D数值模拟中,为构建运动破裂发生器提供了指导。 。我们首先探讨了断层粗糙度在影响地震源参数(如破裂速度,峰值滑移率,总滑移和滑移上升时间)的1点和2点统计中的作用。断层粗糙度降低了破裂速度,峰值滑动速率,上升时间和总滑动的幅度;然后,我们扩展了研究范围,以评估在粗糙断层上以3D模式运行的超剪切过渡机制,以及哪些因素导致了发生频率和空间分布超剪切破裂发作的程度。通过将超剪切分为两种类型的超剪切转变,我们已经调和了二维剪切法(Bruhat et al。,2016)中的断层粗糙度有利于超剪切的观点(Bouchon et al。,2010)而不受现场观测的断层粗糙度不利的冲突。最后,我们研究了在粗糙断层上模拟的地震行为与直接地质观测(如自由表面侧向滑移,塑性应变和浅层滑移缺陷)的关系如何。我们发现,幂律形式的断层粗糙度会导致自仿射表面横向滑动,这与最近在1992年Landers地震中的光学成像观察结果一致(Milliner等,2015)。同样,断层粗糙度往往会产生带有较大浅层滑动倾角的个别事件,这可能有助于解释基于少量地震而提出的建议,即在未成熟断层上,SSD往往更大。 xix。

著录项

  • 作者

    Yao, Qian.;

  • 作者单位

    San Diego State University.;

  • 授予单位 San Diego State University.;
  • 学科 Geophysics.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 140 p.
  • 总页数 140
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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