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Pulse-like and crack-like ruptures in experiments mimicking crustal earthquakes

机译:模拟地壳地震的实验中出现脉冲状和裂纹状破裂

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摘要

Theoretical studies have shown that the issue of rupture modes has important implications for fault constitutive laws, stress conditions on faults, energy partition and heat generation during earthquakes, scaling laws, and spatiotemporal complexity of fault slip. Early theoretical models treated earthquakes as crack-like ruptures, but seismic inversions indicate that earthquake ruptures may propagate in a self-healing pulse-like mode. A number of explanations for the existence of slip pulses have been proposed and continue to be vigorously debated. This study presents experimental observations of spontaneous pulse-like ruptures in a homogeneous linear-elastic setting that mimics crustal earthquakes; reveals how different rupture modes are selected based on the level of fault prestress; demonstrates that both rupture modes can transition to supershear speeds; and advocates, based on comparison with theoretical studies, the importance of velocity-weakening friction for earthquake dynamics.
机译:理论研究表明,断裂模式问题对断层本构律,断层应力条件,地震过程中的能量分配和热量产生,尺度定律以及断层滑动时空复杂度具有重要意义。早期的理论模型将地震视为裂缝状破裂,但地震反演表明地震破裂可能以自愈脉冲状传播。对于滑动脉冲的存在,已经提出了许多解释,并继续进行激烈的辩论。这项研究提供了在模拟地壳地震的均质线性弹性环境中自发性脉冲状破裂的实验观察;揭示了基于断层预应力水平如何选择不同的破裂模式;证明两种破裂模式都可以转变为超剪切速度;并且与理论研究相比较,提倡速度弱化摩擦对于地震动力学的重要性。

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