论文标题

孔隙流体的热加压如何影响3D滑移地震动力学和地面运动?

How does thermal pressurization of pore fluids affect 3D strike-slip earthquake dynamics and ground motions?

论文作者

Vyas, Jagdish Chandra, Gabriel, Alice-Agnes, Ulrich, Thomas, Mai, Paul Martin, Ampuero, Jean-Paul

论文摘要

地震破裂期间的摩擦热增加了断层区流体的压力,并影响破裂过程及其地震辐射。在这里,我们调查了两个关键参数的作用,该参数管理孔隙流体的热压(液压扩散率和剪切区的半径)在地震破裂动力学,运动学源特性和地面移动中的作用。我们进行3D滑移动态破裂模拟,假设速率和状态依赖性摩擦定律与孔隙流体的热压效果相结合。在断层和地面表面进行了密集评估动态破裂的演化和震动地面,以分析破裂参数的变化(滑移,峰滑速PSR,破裂速度VR,上升时间TR),破裂参数之间的相关性和峰值接地速度的变化(PGV)。 我们的模拟揭示了热压化的变化如何影响源特性。我们发现,平均滑移和TR降低会随着液压扩散率的增加而减小,而平均VR和PSR几乎保持恒定。平均滑动,PSR和VR随着剪切区的半宽度而减小,而平均TR增加。剪切区的半径明显影响破裂参数之间的相关性,尤其是对于参数对滑移-VR,PSR-VR和VR-TR。液压扩散率对这些相关性具有可忽略的影响。剪切区半径的变化主要影响VR,这可能会影响其他破裂参数。我们发现滑移与PSR之间的负相关性与更简单的动态破裂模型相反,而其他参数对的趋势是一致的。平均PGV随着剪切区的一半宽度降低的速度比液压扩散率更快,而地面运动变异性也受两个参数类似的影响。

Frictional heat during earthquake rupture raises the pressure of fault zone fluids and affects the rupture process and its seismic radiation. Here, we investigate the role of two key parameters governing thermal-pressurization of pore fluids -- hydraulic diffusivity and shear-zone half-width -- on earthquake rupture dynamics, kinematic source properties and ground-motions. We conduct 3D strike-slip dynamic rupture simulations assuming a rate-and-state dependent friction law with strong velocity-weakening coupled to thermal-pressurization of pore fluids. Dynamic rupture evolution and ground-shaking are densely evaluated across the fault and Earth surface to analyze variations of rupture parameters (slip, peak slip-rate PSR, rupture speed Vr, rise time Tr), correlations among rupture parameters, and variability of peak ground velocity (PGV). Our simulations reveal how variations in thermal-pressurization affect source properties. We find that mean slip and Tr decrease with increasing hydraulic diffusivity, whereas mean Vr and PSR remain almost constant. Mean slip, PSR and Vr decrease with increasing shear-zone half-width, whereas mean Tr increases. Shear-zone half-width distinctly affects the correlation between rupture parameters, especially for parameter pairs slip-Vr, PSR-Vr and Vr-Tr. Hydraulic diffusivity has negligible effects on these correlations. Variations in shear-zone half-width primarily impact Vr, which then may affect other rupture parameters. We find negative correlation between slip and PSR, in contrast to simpler dynamic rupture models, whereas trends for other parameter pairs are in agreement. Mean PGVs decrease faster with increasing shear-zone half-width than with hydraulic diffusivity, whereas ground-motion variability is similarly affected by both parameters.

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