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Fluid pressure and shear zone development over the locked to slow slip region in Cascadia

机译:卡斯卡迪亚锁定至慢滑区域上的流体压力和剪切带发育

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At subduction zones, the deep seismogenic transition from a frictionally locked to steady sliding interface is thought to primarily reflect changes in rheology and fluid pressure and is generally located offshore. The development of fluid pressures within a seismic low-velocity layer (LVL) remains poorly constrained due to the scarcity of dense, continuous onshore-offshore broadband seismic arrays. We image the subducting Juan de Fuca oceanic plate in northern Cascadia using onshore-offshore teleseismic data and find that the signature of the LVL does not extend into the locked zone. Thickening of the LVL down dip where viscous creep dominates suggests that it represents the development of an increasingly thick and fluid-rich shear zone, enabled by fluid production in subducting oceanic crust. Further down dip, episodic tremor, and slip events occur in a region inferred to have locally increased fluid pressures, in agreement with electrical resistivity structure and numerical models of fault slip.
机译:在俯冲带,人们认为从摩擦锁定到稳定滑动界面的深成地震作用主要反映了流变学和流体压力的变化,通常位于海上。由于缺乏密集的连续陆上-近海宽带地震阵列,地震低速层(LVL)内流体压力的发展仍然受到制约。我们利用陆上-近海地震数据对卡斯卡迪亚北部俯冲的胡安·德·富卡洋板进行了成像,发现LVL的特征并未延伸到锁定带。在粘性蠕变占主导地位的LVL下倾层的增厚表明,它代表着日增厚和富含流体的剪切带的形成,这是由俯冲洋壳中的流体产生所致。与电阻率结构和断层滑移的数值模型相一致,进一步的下倾,偶发性震颤和滑移事件发生在推断为局部增加流体压力的区域。

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