首页> 外文期刊>Bulletin of the Seismological Society of America >Mechanical validation of the three-dimensional intersection geometry between the Puente Hills blind-thrust system and the Whittier fault, Los Angeles, California
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Mechanical validation of the three-dimensional intersection geometry between the Puente Hills blind-thrust system and the Whittier fault, Los Angeles, California

机译:加利福尼亚州洛杉矶Puente Hills盲冲系统与Whittier断层之间三维相交几何的机械验证

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The sensitivity of fault interaction to alternative, kinematically plausible intersection geometries of the Puente Hills blind-thrust system and the Whittier fault is modeled under geodetically constrained horizontal contraction. Comparisons of modeled slip rates to available geologic rates (1) suggest that the Coyote Hills segment of the Puente Hills system extends to the base of the seismogenic crust and (2) give slight preference for extension of the active Whittier fault to the base of the seismogenic crust rather than limiting active slip to the hanging wall of the Coyote Hills fault. Furthermore, analysis of strain energy density demonstrates that the preferred model has the greatest mechanical efficiency. This correlation of fit to geologic slip rates and mechanical efficiency supports the effectiveness of this method for evaluating among alternative geometries in the absence of geologically constrained slip rates. The methodology implemented in this study may be effectively used in future studies of deformation within fault systems.Model-generated slip rates along the Puente Hills faults show significant strike slip, implying that seismic hazard of these faults may be underestimated by considering reverse-slip rates alone. Contraction at 036degrees may not be appropriate in the Puente Hills region because of resulting sinistral slip on the Whittier fault, which disagrees with paleoseisimc observations; however, Whittier strike-slip rates fit pa-leoseismic rates under 006.5degrees contraction. Because strike-slip rates are more sensitive to contraction direction than fault intersection geometry, contraction direction should be further constrained in order to accurately assess seismic hazard on these faults.
机译:断层相互作用对Puente Hills盲冲系统和Whittier断层在运动学上合理的相交几何形状的敏感度是在大地约束水平收缩条件下建模的。将模型滑移速率与可用地质速率进行比较(1)表明,Puente Hills系统的Coyote Hills段延伸至地震地壳的底部,(2)稍微倾向于将活跃的Whittier断层扩展至地震的底部。产生地震的地壳,而不是将活动滑移限制在土狼丘陵断层的悬挂壁上。此外,对应变能密度的分析表明,首选模型具有最大的机械效率。拟合与地质滑移率和机械效率的这种相互关系支持了这种方法在缺乏地质约束滑移率的情况下评估其他几何形状的有效性。这项研究中采用的方法学可能会有效地用于未来的断层系统变形研究中。沿Puente Hills断层模型生成的滑移率显示出明显的走滑,这意味着通过考虑反向滑移率可能会低估这些断层的地震危险性单独。在普恩特山丘地区,在036度收缩可能不合适,因为在惠提尔断裂上产生了左旋滑移,这与古西西姆的观测结果不符。然而,在006.5度收缩时,惠提尔的走滑率与抗震率相当。由于走滑率比断层相交的几何形状对收缩方向更敏感,因此应进一步限制收缩方向,以便准确评估这些断层的地震危险。

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