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深部圣安德烈亚斯断层岩屑的低强度。

Low strength of deep San Andreas fault gouge from SAFOD core.

机构信息

US Geological Survey, Menlo Park, California 94025, USA.

出版信息

Nature. 2011 Apr 7;472(7341):82-5. doi: 10.1038/nature09927. Epub 2011 Mar 23.

DOI:10.1038/nature09927
PMID:21441903
Abstract

The San Andreas fault accommodates 28-34 mm yr(-1) of right lateral motion of the Pacific crustal plate northwestward past the North American plate. In California, the fault is composed of two distinct locked segments that have produced great earthquakes in historical times, separated by a 150-km-long creeping zone. The San Andreas Fault Observatory at Depth (SAFOD) is a scientific borehole located northwest of Parkfield, California, near the southern end of the creeping zone. Core was recovered from across the actively deforming San Andreas fault at a vertical depth of 2.7 km (ref. 1). Here we report laboratory strength measurements of these fault core materials at in situ conditions, demonstrating that at this locality and this depth the San Andreas fault is profoundly weak (coefficient of friction, 0.15) owing to the presence of the smectite clay mineral saponite, which is one of the weakest phyllosilicates known. This Mg-rich clay is the low-temperature product of metasomatic reactions between the quartzofeldspathic wall rocks and serpentinite blocks in the fault. These findings provide strong evidence that deformation of the mechanically unusual creeping portions of the San Andreas fault system is controlled by the presence of weak minerals rather than by high fluid pressure or other proposed mechanisms. The combination of these measurements of fault core strength with borehole observations yields a self-consistent picture of the stress state of the San Andreas fault at the SAFOD site, in which the fault is intrinsically weak in an otherwise strong crust.

摘要

圣安德烈亚斯断层可容纳太平洋地壳板块以每年 28-34 毫米的速度向西北方向横移,越过北美板块。在加利福尼亚州,该断层由两个截然不同的锁定段组成,在历史上曾发生过大地震,它们之间隔着一个 150 公里长的蠕动带。圣安德烈亚斯断层深部观测站(SAFOD)是一个科学钻孔,位于加利福尼亚州帕克菲尔德的西北部,靠近蠕动带的南端。岩心是从活跃变形的圣安德烈亚斯断层的不同位置采集的,垂直深度为 2.7 公里(参考文献 1)。在这里,我们报告了这些断层岩心材料在原地条件下的实验室强度测量结果,表明在该地点和该深度,圣安德烈亚斯断层由于存在皂石粘土矿物而非常脆弱(摩擦系数为 0.15),皂石是已知最脆弱的层状硅酸盐之一。这种富含镁的粘土是石英长石围岩与断层中蛇纹岩块之间交代反应的低温产物。这些发现有力地证明了圣安德烈亚斯断层系统中机械上不寻常的蠕动部分的变形是由弱矿物的存在而不是高流体压力或其他提出的机制控制的。这些断层岩心强度测量结果与钻孔观测结果相结合,为圣安德烈亚斯断层在 SAFOD 点的应力状态提供了一个一致的图景,在这种情况下,断层在其他情况下坚固的地壳中本质上是脆弱的。

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本文引用的文献

1
Fault zone fabric and fault weakness.断裂带组构与断裂带软弱性。
Nature. 2009 Dec 17;462(7275):907-10. doi: 10.1038/nature08585.
2
New evidence on the state of stress of the san andreas fault system.圣安德烈亚斯断层系统压力状态的新证据。
Science. 1987 Nov 20;238(4830):1105-11. doi: 10.1126/science.238.4830.1105.
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Talc-bearing serpentinite and the creeping section of the San Andreas fault.含滑石的蛇纹岩与圣安德烈亚斯断层的蠕动段
Nat Commun. 2023 Aug 8;14(1):4612. doi: 10.1038/s41467-023-40313-x.
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Major southern San Andreas earthquakes modulated by lake-filling events.大型圣安德烈亚斯断层南段地震受湖泊充填事件影响。
Nature. 2023 Jun;618(7966):761-766. doi: 10.1038/s41586-023-06058-9. Epub 2023 Jun 7.
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Bridging earthquakes and mountain building in the Santa Cruz Mountains, CA.连接加利福尼亚州圣克鲁斯山脉的地震与山脉形成
Sci Adv. 2022 Feb 25;8(8):eabi6031. doi: 10.1126/sciadv.abi6031.
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Nature. 2021 Mar;591(7849):252-258. doi: 10.1038/s41586-021-03248-1. Epub 2021 Mar 10.
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Sensors (Basel). 2020 Aug 20;20(17):4706. doi: 10.3390/s20174706.
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Across-Fault Velocity Gradients and Slip Behavior of the San Andreas Fault Near Parkfield.帕克菲尔德附近圣安德烈亚斯断层的跨断层速度梯度与滑动行为
Geophys Res Lett. 2020 Jan 16;47(1):e2019GL084480. doi: 10.1029/2019GL084480. Epub 2020 Jan 17.
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