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首页> 外文期刊>International Journal of Rock Mechanics and Mining Sciences >A study of changes in deep fractured rock permeability due to coupled hydro-mechanical effects
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A study of changes in deep fractured rock permeability due to coupled hydro-mechanical effects

机译:水力耦合作用引起的深部裂隙岩渗透性变化研究

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This paper presents a numerical study of the hydro-mechanical behaviour of a fractured rock domain at 1000 m depth below the land surface as a function of different levels of fluid pore pressure. A 2D fractured rock domain is adopted based on data obtained from outcrop mapping, displaying multiple fracture sets, fracture intersections, dead-end and curved fractures. A continuum based numerical model is used to evaluate the effects of compressive boundary stresses, cracking by tension failure in the intact rock and fractures and shear displacement along fractures on its equivalent permeability. Two in situ stress boundary conditions are considered: an isotropic case SR1 with the two horizontal boundary compressive stresses having the same magnitude, and an anisotropic case SR2 with the ratio between these compressive stress components set to be 2. In the SR2 case, changes in the local stress and stress ratio distributions due to different fluid pore pressure levels are anisotropic and more significant than in the SR1 case, because of tension failures in the intact rock forming bridges between fractures. These failure regions opened new flow connections between fractures and thereby caused important anisotropic changes in the flow paths, and significant decrease in local gradients of fluid pore pressure. The equivalent permeability increases sharply when the fluid pore pressure is approximately 90% of the magnitude of the minimum stress at the boundaries of the fractured rock domain. Results show that the equivalent permeability of the fractured rock domain is most sensitive to the fractures normal stiffness, the permeability of the tension failure regions and the power-law exponent for permeability change. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本文提供了一个数值研究,它是在地面以下1000 m深度处的裂隙岩质区域的流体力学行为随不同水平的流体孔隙压力而变化的函数。根据从露头测绘获得的数据,采用二维裂缝岩域,显示多个裂缝集,裂缝相交,死角和弯曲裂缝。基于连续体的数值模型用于评估压缩边界应力,完整岩石和裂缝中的拉伸破坏导致的裂缝以及沿裂缝的剪切位移对其等效渗透率的影响。考虑两个原位应力边界条件:两个水平边界压应力具有相同大小的各向同性情况SR1,以及这些压应力分量之间的比率设置为2的各向异性情况SR2。在SR2情况下,由于裂缝之间完整的岩石形成桥中的拉力破坏,由不同的流体孔隙压力水平引起的局部应力和应力比分布是各向异性的,并且比SR1情况更显着。这些破裂区域在裂缝之间打开了新的流动连接,从而引起了流动路径上的重要各向异性变化,并显着降低了流体孔隙压力的局部梯度。当流体孔隙压力约为裂隙岩石边界处最小应力大小的90%时,等效渗透率会急剧增加。结果表明,裂隙岩体的等效渗透率对裂缝的法向刚度,拉伸破坏区域的渗透率和渗透率变化的幂律指数最敏感。 (C)2015 Elsevier Ltd.保留所有权利。

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