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Laboratory Earthquakes in Large-Scale Rock Experiments Reveal Singular Crack-Like Rupture Dynamics

机译:大型岩石实验中的实验室地震揭示了奇异的裂缝状破裂动力学

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Slip initiation along natural faults is mediated through propagating rupture fronts. What mechanisms drive these ruptures, how fast they propagate, and what makes them stop are central questions of earthquakes source mechanics. Xu et al. (2019, https://doi.org/10.1029/2018JB016797) and Kammer and McLaskey (2019, https://doi.org/10.1016/j.epsl.2019.01.031) study rapid rupture propagation in large-scale rock experiments. Their detailed high-speed strain measurements reveal that rupture fronts are analogous to shear cracks, driven by singular fields at their tip. By comparing these measurements with simulations and analytical fracture mechanics solutions, the authors provide estimates of the fracture energy and frictional properties that regularize these singularities. Building on that, the fracture mechanics framework has been successfully employed to describe rupture arrest and propagation.
机译:沿着自然故障的滑移启动通过传播破裂前线来介导。 有什么机制驱动这些破裂,他们传播的速度有多快,以及让他们停止的是地震来源力学的中央问题。 徐等人。 (2019年,https://doi.org/10.1029/2018jb016797)和kammer和mclaskey(2019,https://doi.org/10.1016/j.epsl.2019.01.031)在大规模岩石实验中的快速破裂传播 。 它们详细的高速应变测量揭示了破裂前沿类似于剪切裂缝,由其尖端的奇异田地驱动。 通过将这些测量与模拟和分析骨折力学解决方案进行比较,提交人提供了规范这些奇点的裂缝能量和摩擦性能的估计。 建立在此方面,裂缝力学框架已成功地用于描述破裂逮捕和传播。

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