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Shale fault zone structure and stress dependent anisotropic permeability and seismic velocity properties (Opalinus Clay, Switzerland)

机译:页岩断裂带结构与应力依赖性各向异性渗透性和地震速度特性(透明度粘土,瑞士)

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Given shale's potential to serve as both a caprock for geological carbon sequestration and as the host for nuclear waste disposal, this study focuses on the structural characterization around a 1.5-3 m thick fault within the Opalinus Clay host rock and petrophysical characterization of both the host rock and fault core. Seven boreholes were drilled at the Mont Terri Rock laboratory in late 2018 to constrain the orientation of the so-called 'Main Fault' and several fracture families within the fault core using core and image logs. Contrary to typical fault models, matrix permeability and seismic velocity measurements show similarities in the host rock and within the Main Fault. In the clay-rich samples, measurements performed in laboratory at varying confining pressures indicate p-wave velocities range from 2.60 to 2.95 km/s perpendicular to foliation and 3.38-3.58 km/s parallel to foliation at near in-situ confining pressures, which increase with similar anisotropy at higher confining pressures (200 MPa). Since the permeability of the host rock and fault zone is very low (10(-19) -10(-21) m(2)) flow is expected to prevail along fractures, where critical stress fault analysis suggests that potential hydraulically conductive fractures are actually conjugate to the Main Fault trend.
机译:鉴于页岩潜力作为地质碳封存的脚轮,并且作为核废料处理的主机,这项研究侧重于蛋白酶粘土宿主岩体内的1.5-3米厚的故障结构表征和主体的岩石物理表征岩石和故障核心。 2018年底,在Mont Terri Rock实验室钻了七个钻孔,以限制所谓的“主故障”和故障核心内的几个骨折家族的定位,使用核心和图像日志。与典型的故障模型相反,矩阵渗透率和地震速度测量显示主体岩石中的相似性和主故障。在富含粘土的样品中,在改变狭窄压力下在实验室中进行的测量表明P波速度范围为2.60至2.95公里/米垂直于叶片,3.38-3.58 km / s平行于靠近原位限制压力的叶片,在较高的限制压力下增加了类似的各向异性(200MPa)。由于宿主岩石和断层区的渗透率非常低(10(-19)-10(-21)m(2))流动预期沿着裂缝占上风,其中临界应力故障分析表明潜在的液压导电骨折是实际上与主要故障趋势共轭。

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