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首页> 外文期刊>International Journal of Rock Mechanics and Mining Sciences >Upscaling 3D coupled hydro mechanical properties of fractured porous rocks
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Upscaling 3D coupled hydro mechanical properties of fractured porous rocks

机译:骨折多孔岩石的升级3D耦合水力力学性能

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摘要

A methodology for upscaling 3D coupled Hydro-Mechanical (HM) properties of fractured porous rocks is developed theoretically, tested on synthetic fractured rock samples, and applied to a real site. The upscaled HM equations take into account the HM coupling in the dual matrix/fracture medium, comprising the cracks system as well as the intact porous matrix, yielding the equivalent stiffness tensor and two different sets of equivalent tensorial Biot coefficients B-ij((I)) and B-ij((II)) and moduli Ma((I)) and M-(II) for the upscaled system (I and II become identical only under certain hypotheses). We provide detailed theoretical expressions in the general tensorial case,and in the particular case of statistically homogeneous and isotropic cracks. The real site application is performed in a damaged and fractured claystone around the GMR gallery (Meuse/Haute-Marne Underground Research Laboratory). The geometric structure of the fracture set around the "Excavation Damage Zone" of the GMR gallery is described by a hybrid model comprising: (i) a set of 10 000 fissures with radially inhomogeneous statistics (size, thickness and density increasing towards the wall) and; (ii) a deterministic set of large curved fractures, periodically spaced along the axis of the gallery according to a 3D chevron pattern. Both "3D" and "2D transverse" distributions of the upscaled coefficients are calculated, and displayed using spheres or ellipsoids. Global tensorial coefficients are also obtained by upscaling the entire annular fractured zone. Equivalent isotropic coefficients are extracted from these tensors: Young modulus E, bulk modulus K, Lame shear modulus mu, Poisson ratio nu, and HM coupling coefficients: the Biot coefficient B and the Biot modulus M. In all cases considered, we discuss the impact of the degree of fissuring and fracturing on the upscaled stiffness and hydromechanical coefficients.
机译:理论上,在理论上开发了骨折多孔岩石的升高3D耦合水力 - 机械(HM)性能的方法,在合成的碎裂岩石样品上测试,并应用于现场。上升高的HM方程考虑了双基质/骨折介质中的HM耦合,包括裂缝系统以及完整的多孔基质,产生等效的刚度张量和两组不同的等效纹身Biot系数B-IJ((I ))和升高系统的B-IJ((ii))和Moduli MA((I))和M-(II)仅在某些假设下相同)。我们在普通姿势案件中提供详细的理论表达,以及特定情况下的统计上均匀和各向同性裂缝。真实的网站应用程序是在GMR Gallery(Meuse / Haute-Marne地下研究实验室)周围的受损和骨折的碎石中进行。围绕GMR廊的“挖掘损伤区”设置的裂缝的几何结构描述了一种混合模型,包括:(i)一组10 000个裂缝,其径向不均匀统计(尺寸,厚度和密度朝向墙壁增加)和; (ii)根据3D字形图案定期沿着画廊的轴线周期地间隔开的大型弯曲骨折。计算升高系数的“3D”和“2D横向”分布,并使用球形或椭圆体显示。通过升高整个环形裂缝区,还可以获得全局姿态系数。从这些张量提取等同的各向同性系数:杨氏模量E,散装模量k,跛足剪切模量Mu,泊松比Nu和HM耦合系数:Biot系数B和Biot模量M.在所有情况下考虑过,我们讨论了影响裂缝和压裂程度对升高刚度和流体机械系数的影响。

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