锯切和天然花岗岩裂缝压控剪切滑移过程中渗透率演化

Zhiqiang Li , Xiaodong Ma , Xiang-Zhao Kong , Martin O. Saar , Daniel Vogler
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引用次数: 8

摘要

在各种地下工程应用中,都涉及到向岩体中注入流体。然而,注入引起的流体压力升高会引发预先存在的天然裂缝的剪切滑动,从而导致岩体渗透率和注入能力的变化。然而,滑动引起的渗透率变化的机制,特别是当受到多次滑动时,仍然没有完全理解。在本研究中,我们进行了实验室实验,以研究锯切和粗糙表面的天然裂缝中剪切滑移引起的裂缝渗透率演化。我们的实验表明,与锯切裂缝相比,当触发流体压力引起滑动时,天然裂缝显示出小得多的有效应力,这可能是由于天然裂缝的表面粗糙得多。对于天然裂缝,我们观察到渗透率和累积剪切位移之间关系中的一个临界剪切位移值:天然裂缝的渗透率最初增加,然后在累积剪切位移达到临界剪切位移后渗透率降低。对于锯切裂缝,测得的渗透率与累积剪切位移之间没有一致的变化,但第一次滑动事件通常会引起最大的剪切位移和相关的渗透率变化。所产生的凿泥材料表明,岩石表面损伤发生在多次滑动期间,尽管不幸的是,我们的实验无法定量连续监测断裂表面性质的变化。因此,我们将滑动引起的渗透率演化归因于由于裂缝微凸体的破坏而导致的渗透率降低和由于剪切膨胀而导致的渗透性增强之间的相互作用,这取决于剪切位移的规模。
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Permeability evolution during pressure-controlled shear slip in saw-cut and natural granite fractures

Fluid injection into rock masses is involved during various subsurface engineering applications. However, elevated fluid pressure, induced by injection, can trigger shear slip(s) of pre-existing natural fractures, resulting in changes of the rock mass permeability and thus injectivity. However, the mechanism of slip-induced permeability variation, particularly when subjected to multiple slips, is still not fully understood. In this study, we performed laboratory experiments to investigate the fracture permeability evolution induced by shear slip in both saw-cut and natural fractures with rough surfaces. Our experiments show that compared to saw-cut fractures, natural fractures show much small effective stress when the slips induced by triggering fluid pressures, likely due to the much rougher surface of the natural fractures. For natural fractures, we observed that a critical shear displacement value in the relationship between permeability and accumulative shear displacement: the permeability of natural fractures initially increases, followed by a permeability decrease after the accumulative shear displacement reaches a critical shear displacement value. For the saw-cut fractures, there is no consistent change in the measured permeability versus the accumulative shear displacement, but the first slip event often induces the largest shear displacement and associated permeability changes. The produced gouge material suggests that rock surface damage occurs during multiple slips, although, unfortunately, our experiments did not allow quantitatively continuous monitoring of fracture surface property changes. Thus, we attribute the slip-induced permeability evolution to the interplay between permeability reductions, due to damages of fracture asperities, and permeability enhancements, caused by shear dilation, depending on the scale of the shear displacement.

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