在损伤和余震模式中发现超剪切过渡的特征

H. Bhat, J. Jara, L. Bruhat, S. Antoine, Kurama Okubo, M. Thomas, E. Rougier, A. Rosakis, C. Sammis, Y. Klinger, R. Jolivet
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摘要

超剪切地震是一种罕见但破坏力巨大的地震。地震破裂达到这个速度的速度,或者从这个速度减速的速度,强烈地影响着高频地面运动和同震断层外破坏的空间范围。 传统上,对超剪切地震的研究集中在确定哪些断层段持续了完全成熟的超剪切破裂。知道破裂首先以亚剪切破裂速度传播,这些研究通常猜测从亚剪切到超剪切过渡的大致位置。 确认的超剪切破裂的罕见,加上超剪切过渡的条件仍然存在争议,使得在实际地震中研究超剪切过渡变得复杂。 在这里,我们发现了超剪切过渡位置的独特特征:我们表明,当破裂加速到超剪切速度时,应力集中突然缩小,限制了断层外破坏和余震的产生。 首先,我们使用理论断裂力学来证明,在过渡到超剪切之前,破裂尖端周围的应力集中缩小,限制了可能发生破坏和余震的区域。然后,采用两种不同的动态破裂建模方法,我们证实了这种应力集中的减少,进一步验证了过渡区域的预期特征。我们将这些数值和理论结果与三次自然超切变地震的高分辨率余震目录进行了对比,在这些地震中,我们在超切变过渡附近发现了一个余震密度较低的小区域。最后,利用卫星光学图像相关技术,我们发现,对于第四个事件,过渡带的特征是破坏带的宽度减小。 我们的结果表明,从亚剪切破裂到超剪切破裂的过渡可以通过局部没有余震和断层外破坏的减少来清楚地识别,这是由于破裂尖端应力强度的短暂降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Signature of supershear transition seen in damage and aftershock pattern

Supershear earthquakes are rare but powerful ruptures with devastating consequences. How quickly an earthquake rupture attains this speed, or for that matter decelerates from it, strongly affects high-frequency ground motion and the spatial extent of coseismic off-fault damage. Traditionally, studies of supershear earthquakes have focused on determining which fault segments sustained fully-grown supershear ruptures. Knowing that the rupture first propagated at subshear rupture speeds, these studies usually guessed an approximate location for the transition from subshear to supershear regimes. The rarity of confirmed supershear ruptures, combined with the fact that conditions for supershear transition are still debated, complicates the investigation of supershear transition in real earthquakes. Here, we find a unique signature of the location of a supershear transition: we show that, when a rupture accelerates towards supershear speed, the stress concentration abruptly shrinks, limiting the off-fault damage and aftershock productivity. First, we use theoretical fracture mechanics to demonstrate that, before transitioning to supershear, the stress concentration around the rupture tip shrinks, confining the region where damage & aftershocks are expected. Then, employing two different dynamic rupture modeling approaches, we confirm such reduction in stress concentration, further validating the expected signature in the transition region. We contrast these numerical and theoretical results with high-resolution aftershock catalogs for three natural supershear earthquakes, where we identify a small region with lower aftershock density near the supershear transition. Finally, using satellite optical image correlation techniques, we show that, for a fourth event, the transition zone is characterized by a diminution in the width of the damage zone. Our results demonstrate that the transition from subshear to supershear rupture can be clearly identified by a localized absence of aftershocks, and a decrease in off-fault damage, due to a transient reduction of the stress intensity at the rupture tip.

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