The Dynamics of Fast and Slow Earthquake Ruptures in Viscoelastic Materials

IF 3.9 2区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
Huihui Weng
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Abstract

Classical theories using linear elasticity predict that crack propagation asymptotically approaches a limiting speed, beyond which the energy balance becomes unphysical. However, geophysical and laboratory observations show that ruptures can propagate at either a very low, stable speed or a significantly high speed. Here, we first use numerical simulations to show that frictional ruptures in viscoelastic materials can steadily propagate at a terminal speed, rather than asymptotically approaching the classical speed limit. The simulated terminal speed spans a continuum of values, ranging from slow ruptures to supershear ruptures. We then develop a new theory incorporating viscoelasticity to predict all simulated rupture speeds. In addition to the ratio of fracture energy to static energy release rate, we find that three length scales also play a crucial role in governing the energy balance during rupture in viscoelastic materials. The theory predicts that stable rupture speeds are energetically allowed to be very small, which helps explain the widespread occurrence of slow earthquakes. Beyond the classical speed limit, the energy balance becomes independent of macroscopic length scales, being controlled solely by the local properties around the rupture tip. Furthermore, we find that the effects of viscoelasticity in fault zones are significant in earthquake rupture propagation, even when the fault-zone geometrical scales are short relative to other fault dimensions. These numerical and theoretical findings fundamentally advance our understanding of dynamic rupture propagation.

Abstract Image

粘弹性材料的快、慢地震破裂动力学
使用线弹性的经典理论预测裂纹扩展渐近接近极限速度,超过该极限速度,能量平衡变得非物理。然而,地球物理和实验室观测表明,破裂可以以非常低、稳定的速度传播,也可以以非常高的速度传播。在这里,我们首先使用数值模拟来表明粘弹性材料中的摩擦破裂可以在终端速度下稳定地传播,而不是渐进地接近经典速度极限。模拟的终端速度跨越了一个连续的值,范围从慢破裂到超剪切破裂。然后,我们开发了一种结合粘弹性的新理论来预测所有模拟破裂速度。除了断裂能与静态能释放率之比外,我们发现三种长度尺度在粘弹性材料断裂时的能量平衡中也起着至关重要的作用。该理论预测,稳定的破裂速度在能量上允许非常小,这有助于解释缓慢地震的广泛发生。超过经典的速度限制,能量平衡变得独立于宏观长度尺度,完全由断裂尖端周围的局部特性控制。此外,我们发现,即使断层带的几何尺度相对于其他断层尺度较短,断层带的粘弹性对地震破裂传播的影响也是显著的。这些数值和理论发现从根本上促进了我们对动态破裂传播的理解。
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来源期刊
Journal of Geophysical Research: Solid Earth
Journal of Geophysical Research: Solid Earth Earth and Planetary Sciences-Geophysics
CiteScore
7.50
自引率
15.40%
发文量
559
期刊介绍: The Journal of Geophysical Research: Solid Earth serves as the premier publication for the breadth of solid Earth geophysics including (in alphabetical order): electromagnetic methods; exploration geophysics; geodesy and gravity; geodynamics, rheology, and plate kinematics; geomagnetism and paleomagnetism; hydrogeophysics; Instruments, techniques, and models; solid Earth interactions with the cryosphere, atmosphere, oceans, and climate; marine geology and geophysics; natural and anthropogenic hazards; near surface geophysics; petrology, geochemistry, and mineralogy; planet Earth physics and chemistry; rock mechanics and deformation; seismology; tectonophysics; and volcanology. JGR: Solid Earth has long distinguished itself as the venue for publication of Research Articles backed solidly by data and as well as presenting theoretical and numerical developments with broad applications. Research Articles published in JGR: Solid Earth have had long-term impacts in their fields. JGR: Solid Earth provides a venue for special issues and special themes based on conferences, workshops, and community initiatives. JGR: Solid Earth also publishes Commentaries on research and emerging trends in the field; these are commissioned by the editors, and suggestion are welcome.
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