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The permeability of fractured rocks in pressurised volcanic and geothermal systems

机译:加压火山岩和地热系统中裂隙岩的渗透率

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摘要

The connectivity of rocks’ porous structure and the presence of fractures influence the transfer of fluids in the Earth’s crust. Here, we employed laboratory experiments to measure the influence of macro-fractures and effective pressure on the permeability of volcanic rocks with a wide range of initial porosities (1–41 vol. %) comprised of both vesicles and micro-cracks. We used a hand-held permeameter and hydrostatic cell to measure the permeability of intact rock cores at effective pressures up to 30 MPa; we then induced a macro-fracture to each sample using Brazilian tensile tests and measured the permeability of these macro-fractured rocks again. We show that intact rock permeability increases non-linearly with increasing porosity and decreases with increasing effective pressure due to compactional closure of micro-fractures. Imparting a macro-fracture both increases the permeability of rocks and their sensitivity to effective pressure. The magnitude of permeability increase induced by the macro-fracture is more significant for dense rocks. We finally provide a general equation to estimate the permeability of intact and fractured rocks, forming a basis to constrain fluid flow in volcanic and geothermal systems.
机译:岩石多孔结构的连通性和裂缝的存在影响着地壳中流体的传输。在这里,我们采用实验室实验来测量宏观裂缝和有效压力对火山岩渗透率的影响,这些火山岩具有较大的初始孔隙度(1-41%vol。%),包括囊泡和微裂纹。我们使用手持式渗透仪和静压池来测量完整岩心在有效压力高达30 MPa时的渗透率。然后,我们使用巴西拉伸试验对每个样品进行了宏观断裂,并再次测量了这些宏观断裂岩石的渗透率。我们表明,由于微裂缝的压实封闭,完整的岩石渗透率随孔隙度的增加而非线性增加,而随着有效压力的增加而减小。施加宏观裂缝既增加了岩石的渗透性,又增加了其对有效压力的敏感性。宏观裂缝引起的渗透率增加幅度对于致密岩石更为显着。最后,我们提供了一个通用方程式来估算完整岩石和裂隙岩石的渗透率,从而为约束火山岩和地热系统中的流体流动奠定了基础。

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