美国加利福尼亚州北部巴特利泉断层带的综合地质和地球物理模型:对断层蠕变和区域结构的影响

Geosphere Pub Date : 2023-11-30 DOI:10.1130/ges02684.1
V. Langenheim, R. McLaughlin, B. Melosh
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引用次数: 0

摘要

断层蠕变的速度和深度位置是评估地震危险所需的重要参数,但很难确定其特征。在此,我们利用蛇纹岩(一种通常与断层蠕变有关的岩石类型)的磁性,对其沿巴特利特斯普林斯断层带的深度范围进行建模,该断层带是美国西部加利福尼亚州旧金山湾以北圣安地列斯断层系统的重要组成部分。我们利用沿断层带 120 千米距离的 14 个横截面上的地质约束条件,对航空磁场和重力异常进行建模。我们的结果预测,断层带深处的蛇绿岩比地表地质关系推断的要多。现有的大地测量模型并不一致,对断层沿线蠕变模式的预测也不尽相同。我们的研究结果倾向于深度蠕变更广泛的模型。蛇绿岩的来源似乎是向西推移并位于弗朗西斯坎复合体之下的蛇绿岩,皮尔斯伯里湖附近的断层冲沟中存在的锑榴石(一种在深部稳定的高温蛇绿岩矿物)支持了这一解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrated geologic and geophysical modeling across the Bartlett Springs fault zone, northern California (USA): Implications for fault creep and regional structure
The rate and location at depth of fault creep are important, but difficult to characterize, parameters needed to assess seismic hazard. Here we take advantage of the magnetic properties of serpentinite, a rock type commonly associated with fault creep, to model its depth extent along the Bartlett Springs fault zone, an important part of the San Andreas fault system north of the San Francisco Bay, California (western United States). We model aeromagnetic and gravity anomalies using geologic constraints along 14 cross sections over a distance of 120 km along the fault zone. Our results predict that the fault zone has more serpentinite at depth than inferred by geologic relationships at the surface. Existing geodetic models are inconsistent and predict different patterns of creep along the fault. Our results favor models with more extensive creep at depth. The source of the serpentinite appears to be ophiolite thrust westward and beneath the Franciscan Complex, an interpretation supported by the presence of antigorite, a high-temperature serpentine mineral stable at depth, in fault gouge near Lake Pillsbury.
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