Hope断层地震的地面运动模拟

E. Thomson, Robin L. Lee, B. Bradley
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引用次数: 1

摘要

本文使用基于物理的模拟方法和新西兰的三维地壳速度模型研究了希望断层Mw7.51主要潜在破裂的地面运动。通过与位于希望断层附近的一系列历史小震级地震的观测结果进行比较,验证了模拟方法在该地区的应用。模拟结果与传统的经验地面运动模型进行了比较,在模拟的沉积盆地区域,模拟的峰值地面速度明显更高。对震级、应力参数、震源位置和运动滑移分布等震源特征的变化进行了敏感性分析,并分析了它们对地震动强度的影响。结果表明,震级和应力参数对长周期地震动幅值和短周期地震动幅值影响较大。将希望断层情景与2016年凯库拉Mw7.8地震的地面运动强度进行了比较,发现凯库拉地震沿南岛东部产生了更强的运动,而希望断层情景在近断裂带以西产生了更强的运动,坎特伯雷的地面运动水平相似。这一情景的模拟地面运动补充了先前基于经验的估计,并为缓解和应急规划提供了资料。
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Ground motion simulations of Hope fault earthquakes
This paper examines ground motions for a major potential Mw7.51 rupture of the Hope Fault using a physics based simulation methodology and a 3D crustal velocity model of New Zealand. The simulation methodology was validated for use in the region through comparison with observations for a suite of historic small magnitude earthquakes located proximal to the Hope Fault. Simulations are compared with conventionally utilised empirical ground motion models, with simulated peak ground velocities being notably higher in regions with modelled sedimentary basins. A sensitivity analysis was undertaken where the source characteristics of magnitude, stress parameter, hypocentre location and kinematic slip distribution were varied and an analysis of their effect on ground motion intensities is presented. It was found that the magnitude and stress parameter strongly influenced long and short period ground motion amplitudes, respectively. Ground motion intensities for the Hope Fault scenario are compared with the 2016 Kaik¯oura Mw7.8 earthquake, it was found that the Kaikoura earthquake produced stronger motions along the eastern South Island, while the Hope Fault scenario resulted in stronger motions immediately West of the near-fault region and similar levels of ground motion in Canterbury. The simulated ground motions for this scenario complement prior empirically-based estimates and are informative for mitigation and emergency planning purposes.
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