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Co-Evolution of Fracture Permeability and Friction in Rocks from the EGS Collab Experiment 1 Site

机译:egs Collab实验1位点岩石岩石骨折和摩擦的共同演变

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Fracture permeability is a dynamic property under conditions of varying stress and responds to fluid overpressures applied during hydraulic stimulation. We use samples from the SIGMA-V site (Sanford Underground Research Facility (SURF), SD) to measure the co-evolution of fracture permeability and friction throughout phases of the seismic cycle. This is accomplished via slide-hold-slide and pore pressure stepping experiments completed in double direct shear. Fracture reactivation results in permeability enhancement only after sufficiently long interseismic repose periods. The magnitude of permeability increase from each reactivation, following the long hold periods, is critically dependent on the degree of fracture healing achieved in each pre-slip hold period. Shear dilation and permeability enhancement only results following a threshold repose period. Permeability enhances continuously with each pressure step with the highest permeability increase rate being with the first reactivation event. Our study establishes a direct linkage between fracture permeability and friction evolution throughout the seismic cycle and hydraulic shear, which applies across different fracture surface roughnesses.
机译:断裂渗透性是在不同应力的条件下的动态特性,并且在液压刺激期间施加的流体过压进行响应。我们使用Sigma-V网站(Sanford地下研究设施(SUR),SD)的样本来测量在地震循环的阶段的断裂渗透性和摩擦的共同演变。这是通过滑动载滑滑动滑动和孔隙压力踩踏实验完成的,以双直接剪切完成。骨折再活化导致渗透性增强仅在足够长的沉过休息时间后。在长保持时段之后,每次再激活的渗透率增加的幅度严重取决于在每个预磨损保持时段中实现的裂缝愈合程度。剪切扩张和渗透性增强仅在阈值休养期后产生结果。渗透性随着第一次再活化事件的渗透率增加而与每个压力步骤连续增强。我们的研究在整个地震循环和液压剪切中建立了骨折渗透率和摩擦速度之间的直接连接,液压剪切跨越不同的断裂表面粗糙度。

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