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Attenuation of radiated ground motion and stresses from three-dimensional supershear ruptures

机译:三维地面超剪切破裂引起的辐射地震动和应力的衰减

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Radiating shear and Rayleigh waves from supershear ruptures form Mach waves that transmit large-amplitude ground motion and stresses to locations far from the fault. We simulate bilateral ruptures on a finite-width vertical strike-slip fault (of width W and half-length L with L W) breaking the surface of an elastic half-space, and focus on the wavefield out to distances comparable to L. At distances much smaller than W, two-dimensional plane-strain slip-pulse models (i.e., models in which the lateral extent of the slip zone is unbounded) accurately predict the subsurface wavefield. Amplitudes in the shear Mach wedge of those models are undiminished with distance from the fault. When viewed from distances far greater than W, rupture is accurately modeled as a moving point source that produces a shear Mach cone and, on the free surface, Rayleigh-wave Mach fronts. Geometrical spreading of the shear Mach cone occurs radially and amplitudes there decrease with the inverse square-root of distance. The transition between these two asymptotic limits occurs at distances comparable to W. Similar considerations suggest that Rayleigh Mach waves suffer no attenuation in the ideally elastic medium studied here. The rate at which fault strength weakens at the rupture front exerts a strong influence on the off-fault fields only in the immediate vicinity of the fault (for both sub-Rayleigh and supershear ruptures) and at the Mach fronts of supershear ruptures. More rapid weakening generates larger amplitudes at the Mach fronts.
机译:来自超剪切破裂的辐射剪切波和瑞利波形成马赫波,这些马赫波将大幅度的地面运动和应力传递到远离断层的位置。我们在有限宽度的垂直走滑断层(宽度为W,长度为L,长度为LW的情况下)上破坏弹性半空间的表面,模拟了双侧破裂,并将波场集中在与L相当的距离上。二维平面应变滑移脉冲模型(即滑移区域的横向范围不受限制的模型)远小于W,可准确预测地下波场。这些模型的剪切马赫楔形的振幅不会随着距断层的距离而减小。当从远大于W的距离观察时,破裂被精确地建模为移动点源,产生剪切马赫锥,在自由表面上产生瑞利波马赫锋。剪切马赫锥的几何扩展是径向发生的,并且那里的振幅随着距离的平方根的倒数而减小。这两个渐近极限之间的跃迁发生在与W相当的距离上。类似的考虑表明,瑞利马赫波在此处研究的理想弹性介质中不会衰减。断裂强度在断裂前沿减弱的速率仅在断裂的紧邻区域(对于次瑞利断裂和超剪切断裂)以及在超剪切断裂的马赫前沿对断层场产生强烈影响。更快的弱化会在马赫峰产生更大的振幅。

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