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首页> 外文期刊>Pure and Applied Geophysics >Common Evolution of Mechanical and Transport Properties in Thermally Cracked Westerly Granite at Elevated Hydrostatic Pressure
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Common Evolution of Mechanical and Transport Properties in Thermally Cracked Westerly Granite at Elevated Hydrostatic Pressure

机译:静水压升高下热裂的西风花岗岩力学和输运性能的共同演化

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摘要

Abstract—Increasing the damage and crack porosity in crustal rocks can result in significant changes to various key physical properties, including mechanical strength, elastic and mechanical anisotropy, and the enhancement of transport properties. Using a Non-Interactive Crack Effective Medium (NIC) theory as a fundamental tool, we show that elastic wave dispersion can be inverted to evaluate crack density as a function of temperature and is compared with optically determined crack density. Further, we show how the existence of embedded microcrack fabrics in rocks also significantly influences the fracture toughness (KIC) of rocks as measured via a suite of tensile failure experiments (chevron cracked notch Brazilian disk). Finally, we include fluid flow in our analysis via the Gue′guen and Dienes crack porosity-permeability model. Using the crack density and aspect ratio recovered from the elastic-wave velocity inversion, we successfully compare permeability evolution with pressure with the laboratory measurements of permeability.
机译:摘要—增加地壳岩石的破坏和裂缝孔隙率会导致各种关键物理性能发生重大变化,包括机械强度,弹性和机械各向异性以及输运性能的增强。使用非交互式裂纹有效介质(NIC)理论作为基本工具,我们表明可以将弹性波色散反转以评估随温度变化的裂纹密度,并与光学确定的裂纹密度进行比较。此外,我们展示了岩石中嵌入的微裂纹织物的存在还如何显着影响岩石的断裂韧性(KIC),如通过一系列拉伸破坏实验(雪佛龙裂纹缺口巴西盘)所测量的。最后,我们通过Gue'guen和Dienes裂缝孔隙率-渗透率模型将流体流动纳入分析。使用从弹性波速度反演中恢复的裂缝密度和纵横比,我们成功地将渗透率随压力的变化与实验室渗透率的测量结果进行了比较。

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