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Excitation of San Andreas tremors by thermal instabilities below the seismogenic zone

机译:通过发震区下方的热稳定性激发San Andreas震颤

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The relative motion of tectonic plates is accommodated at boundary faults through slow and fast ruptures that encompass a wide range of source properties. Near the Parkfield segment of the San Andreas fault, low-frequency earthquakes and slow-slip events take place deeper than most seismicity, at temperature conditions typically associated with stable sliding. However, laboratory experiments indicate that the strength of granitic gouge decreases with increasing temperature above 350°C, providing a possible mechanism for weakening if temperature is to vary dynamically. Here, we argue that recurring low-frequency earthquakes and slow-slip transients at these depths may arise because of shear heating and the temperature dependence of frictional resistance. Recurring thermal instabilities can explain the recurrence pattern of the mid-crustal low-frequency earthquakes and their correlative slip distribution. Shear heating associated with slow slip is sufficient to generate pseudotachylyte veins in host rocks even when fault slip is dominantly aseismic.
机译:通过慢速和快速破裂,构造板的相对运动通过伴随着宽范围的源特性。在San Andreas故障的Parkfield领域附近,低频地震和慢速速度比大多数地震性更深入,温度条件通常与稳定滑动相关。然而,实验室实验表明,在350℃的温度上增加,花岗岩凿孔的强度降低,如果温度动态变化,则提供了用于减弱的可能机制。在这里,我们认为由于剪切加热和摩擦阻力的温度依赖性,可能会出现在这些深度的反复性的低频地震和慢滑瞬变。经常性的热稳定性可以解释中外低频地震的复发模式及其相关性滑动分布。慢速滑动的剪切加热足以在主体岩石中产生伪囊状静脉,即使发生故障滑移是占主导地位的爆炸性也是如此。

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