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A multiscale microstructural model of damage and permeability in fractured solids

机译:裂缝固体损伤和渗透率的多尺度微观结构模型

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Deterioration of mechanical and hydraulic properties of rock masses and subsequent problems are closely related to changes in the stress state, formation of new cracks, and increase of permeability in porous media saturated with freely moving fluids. We describe a coupled approach to model damage induced by hydro-mechanical processes in low permeability solids. We consider the solid as an anisotropic brittle material where deterioration is characterized by the formation of nested microstructures in the form of equi-distant parallel faults characterized by distinct orientation and spacing. The particular geometry of the faults allows for the analytical derivation of the porosity and of the anisotropic permeability of the solid. The approach can be used for a wide range of engineering problems, including the prevention of water or gas outburst in underground mines and the prediction of the integrity of reservoirs for underground CO2 sequestration or hazardous waste storage.
机译:岩体机械和液压性能的劣化和随后的问题与压力状态的变化,新裂缝的形成和多孔介质中的渗透率的增加与自由移动的流体的变化密切相关。 我们描述了通过低渗透固体的水力机械过程诱导的模型损伤的耦合方法。 我们认为固体作为各向异性脆性材料,其中劣化的特征在于,通过形成具有不同取向和间隔的等距平行断层的形式形成嵌套微结构。 故障的特定几何形状允许固体的孔隙率和各向异性渗透性的分析衍生。 该方法可用于广泛的工程问题,包括防止地下矿山的水或天然气爆发,并预测地下二氧化碳封存或危险废物储存的储层完整性。

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