地质学
脆性
磁导率
多孔性
打滑(空气动力学)
构造学
孔隙水压力
岩石学
流体压力
断层(地质)
多孔介质
岩土工程
地震学
矿物学
流体力学
脆性断裂
高压
作者
Tommaso Mandolini,Zachary Zega,M. L. Rivers,Wenlu Zhu
摘要
Abstract The morphology of fault zones formed by slow faulting is markedly different from that of brittle faulting. In this study, we quantify the three‐dimensional (3D) pore distribution and permeability structures of two rock samples that have been deformed to failure by slow and brittle faulting, respectively. Our results show that the permeability structure of fault zones varies greatly depending on the faulting mechanism. Fault cores formed by slow faulting exhibit much higher porosity and permeability compared to the surrounding damage zone and wall rocks, unlike those formed through brittle faulting. Since slow slip events associated with high pore fluid pressures are common in active tectonic regions, we propose that slow slip events can serve as a mechanism to maintain the permeable pathways beneath the seismogenic zone, facilitating the movement of mantle‐derived fluids from deep reservoirs toward the surface.
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