首页> 外文期刊>Bulletin of the Seismological Society of America >3D Ground-Motion Simulations of M-w 7 Earthquakes on the Salt Lake City Segment of the Wasatch Fault Zone: Variability of Long-Period (T >= 1 s) Ground Motions and Sensitivity to Kinematic Rupture Parameters
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3D Ground-Motion Simulations of M-w 7 Earthquakes on the Salt Lake City Segment of the Wasatch Fault Zone: Variability of Long-Period (T >= 1 s) Ground Motions and Sensitivity to Kinematic Rupture Parameters

机译:3D盐湖城盐湖城地震地震的地面运动模拟播种区盐湖区:长期(T> = 1 s)地面运动的可变性和运动敏感性

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摘要

We examine the variability of long-period (T >= 1 s) earthquake ground motions from 3D simulations of M-w 7 earthquakes on the Salt Lake City segment of the Wasatch fault zone, Utah, from a set of 96 rupture models with varying slip distributions, rupture speeds, slip velocities, and hypocenter locations. Earthquake ruptures were prescribed on a 3D fault representation that satisfies geologic constraints and maintained distinct strands for the Warm Springs and for the East Bench and Cottonwood faults. Response spectral accelerations (SA; 1.5-10 s; 5% damping) were measured, and average distance scaling was well fit by a simple functional form that depends on the near-source intensity level SA(0) (T) and a corner distance R-c: SA (R,T) = SA(0) (T) (1 + (R/R-c))(-1). Period-dependent hanging-wall effects manifested and increased the ground motions by factors of about 2-3, though the effects appeared partially attributable to differences in shallow site response for sites on the hanging wall and footwall of the fault. Comparisons with modern ground-motion prediction equations (GMPEs) found that the simulated ground motions were generally consistent, except within deep sedimentary basins, where simulated ground motions were greatly underpredicted. Ground-motion variability exhibited strong lateral variations and, at some sites, exceeded the ground-motion variability indicated by GMPEs. The effects on the ground motions of changing the values of the five kinematic rupture parameters can largely be explained by three predominant factors: distance to high-slip subevents, dynamic stress drop, and changes in the contributions from directivity. These results emphasize the need for further characterization of the underlying distributions and covariances of the kinematic rupture parameters used in 3D ground-motion simulations employed in probabilistic seismic-hazard analyses.
机译:我们通过犹他州瓦萨奇断裂带盐湖城段M-w 7地震的三维模拟,从一组96个不同滑动分布、破裂速度、滑动速度和震源位置的破裂模型,研究了长周期(T>=1s)地震地面运动的可变性。地震破裂在满足地质约束的3D断层表示上进行了规定,并为温泉、东台阶和棉木断层保持了不同的股线。测量了响应谱加速度(SA;1.5-10 s;5%阻尼),并通过一个简单的函数形式很好地拟合了平均距离标度,该函数形式取决于近源强度水平SA(0)(T)和角距离R-c:SA(R,T)=SA(0)(T)(1+(R/R-c))(-1)。周期性上盘效应表现出来,并使地面运动增加了约2-3倍,尽管这种效应似乎部分归因于断层上盘和下盘上的场地的浅层场地响应差异。与现代地震动预测方程(GMPEs)的比较发现,模拟的地震动基本上是一致的,但在深部沉积盆地内,模拟的地震动被严重低估。地震动变异性表现出强烈的横向变化,在某些地点,超过了GMPEs指示的地震动变异性。改变五个运动学破裂参数的值对地面运动的影响在很大程度上可以用三个主要因素来解释:到高滑移子事件的距离、动态应力降和方向性贡献的变化。这些结果强调了进一步描述概率地震危险性分析中三维地震动模拟中使用的运动学破裂参数的潜在分布和协方差的必要性。

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