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通过自发演化的实验室地震理解动态摩擦力。

Understanding dynamic friction through spontaneously evolving laboratory earthquakes.

机构信息

Graduate Aerospace Laboratories, California Institute of Technology, Pasadena, California 91125, USA.

Division of Engineering and Applied Science, California Institute of Technology, Pasadena, California 91125, USA.

出版信息

Nat Commun. 2017 Jun 29;8:15991. doi: 10.1038/ncomms15991.

Abstract

Friction plays a key role in how ruptures unzip faults in the Earth's crust and release waves that cause destructive shaking. Yet dynamic friction evolution is one of the biggest uncertainties in earthquake science. Here we report on novel measurements of evolving local friction during spontaneously developing mini-earthquakes in the laboratory, enabled by our ultrahigh speed full-field imaging technique. The technique captures the evolution of displacements, velocities and stresses of dynamic ruptures, whose rupture speed range from sub-Rayleigh to supershear. The observed friction has complex evolution, featuring initial velocity strengthening followed by substantial velocity weakening. Our measurements are consistent with rate-and-state friction formulations supplemented with flash heating but not with widely used slip-weakening friction laws. This study develops a new approach for measuring local evolution of dynamic friction and has important implications for understanding earthquake hazard since laws governing frictional resistance of faults are vital ingredients in physically-based predictive models of the earthquake source.

摘要

摩擦在断裂如何在地球地壳中拉开断层并释放引发破坏性震动的波方面起着关键作用。然而,动态摩擦演化是地震科学中最大的不确定性之一。在这里,我们报告了在实验室中自发发展的小型地震中局部摩擦演化的新测量结果,这得益于我们的超高速全场成像技术。该技术可捕捉动态断裂位移、速度和应力的演化,其断裂速度范围从亚音速到超剪切。观察到的摩擦具有复杂的演化,表现为初始速度增强,随后是显著的速度减弱。我们的测量结果与补充了闪光加热的速率和状态摩擦公式一致,但与广泛使用的滑动减弱摩擦定律不一致。这项研究为测量动态摩擦的局部演化提供了一种新方法,对理解地震灾害具有重要意义,因为控制断层摩擦阻力的定律是基于物理的地震源预测模型的重要组成部分。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/056e/5493769/1da1e91a5db4/ncomms15991-f1.jpg

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