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3-D Simulation of Earthquake Generation Cycles and Evolution of Fault Constitutive Properties

机译:地震发生周期的3-D模拟和断层本构特征的演化

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摘要

The earthquake generation cycle consists of tectonic loading, quasi-static rupture nucleation, dynamic rupture propagation and stop,and subsequent stress redistribution and fault restrengthening. From a macroscopic point of view, the entire process of earthquake generation cycles should be consistently described by a coupled nonlinear system of a slip-response function,a fault constitutive law and a driving force. On the basis of such a general idea, we constructed a realistic 3-D simulation model for earthquake generation cycles at transcurrent plate boundary by combining the viscoelastic slip-response function derived for a two-layered elastic-viscoelastic structure model, the slip-and time-dependent fault constitutive law that has an inherent mechanism of fault restrengthening, and the steady relative plate motion as a driving force into a single closed system. With this model we numerically simulated the earthquake generation cycles repeated in a seismogenic region on a plate interface, and examined space-time changes in shear stress, slip deficits and fault constitutive properties during one complete cycle in detail. the occurrence of unstable dynamic slip brings about decrease both in fault strength and shear stress to a constant residual level. After the arrest of dynamic slip, the breakdown strength drop Δσ_p of fault is restored rapidly and the process of stress accumulation resumes in the seismogenic region. On the other hand, the restoration of the critical weakening displacement D_c proceeds gradually with time through the interseismic period. The restoration of D_c can be regarded as the macroscopic manifestation of the microscopic recovery process of fractal fault surface structure.Through numerical simulation with a multi-segmented fault model, we examined the effects of viscoelastic fault-to-fault interaction. The effect of transient viscoelastic stress transfer through the asthenosphere is significant as well as the direct effect of elastic stress transfer, and it possibly explains the time lag of the sequential occurrence of large events along a plate boundary.
机译:地震发生的周期包括构造载荷,准静态破裂成核,动态破裂的传播和停止以及随后的应力重新分布和断层恢复。从宏观的角度来看,地震发生周期的整个过程应该由滑移响应函数,断层本构律和驱动力的耦合非线性系统一致地描述。基于这样的一般思想,我们结合了为两层弹性-粘弹性结构模型推导的粘弹性滑移响应函数,即滑移和滑移,构造了一个现实的3-D模拟模型,用于横流板边界处的地震发生周期。时间相关的断层本构定律,具有断层重新束缚的固有机制,并且稳定的相对板块运动作为驱动力进入单个封闭系统。利用该模型,我们对板界面上的地震发生区域中重复发生的地震发生周期进行了数值模拟,并详细研究了一个完整周期内剪切应力,滑动缺陷和断层本构特性的时空变化。不稳定的动态滑动的发生使断层强度和剪切应力均降低到恒定的残余水平。止动滑移后,断层的破裂强度下降Δσ_p迅速恢复,应力累积过程在震源区恢复。另一方面,临界弱化位移D_c的恢复在整个地震期间随时间逐渐进行。 D_c的恢复可以看作是分形断层表面微观恢复过程的宏观体现。通过多段断层模型的数值模拟,研究了粘弹性断层与断层相互作用的影响。穿过软流圈的瞬态粘弹性应力转移的影响以及弹性应力转移的直接影响都是显着的,这可能解释了沿板块边界连续发生大事件的时滞。

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