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Three-Dimensional Thermo-Poroelastic Modeling and Analysis of Flow, Heat Transport and Deformation in Fractured Rock with Applications to a Lab-Scale Geothermal System

机译:应用于实验室地热系统的裂缝岩体流动,热运输和变形的三维热络弹性造型及分析

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摘要

Fractures and other discontinuities, such as bedding planes, and faults, usually act as highly permeable flow paths, dominating subsurface fluid and heat transport, which is of importance in developing underground energy resources. We investigate coupled transport and fracture deformation/propagation within the framework of the theory of thermo-poroelasticity. A 3D finite element method is developed and utilized to discretize the governing equations. To simulate the thermo-hydro-mechanical behavior of the fracture/matrix system, a special zero-thickness interface element is implemented based on the cohesive zone model (CZM), to simulate both tensile and shear failure. The fluid flux/heat exchange between the fractures and the surrounding permeable rock matrix is determined by fluid/heat transfer coefficients satisfying mass and energy balance across the interior boundaries, and allowing for temperature and pressure drop across the interface. Numerical analyses are performed to verify the model and to illustrate fundamental phenomena observed in the laboratory. Lab-scale fracturing and circulation experiments are studied in detail, revealing the role of hydro-thermo-mechanical properties and coupled processes.
机译:骨折和其他不连续性,如床上用品和故障,通常充当高度渗透性的流动路径,主导地下液和热传输,这在开发地下能源资源方面是重要的。我们在热孔弹性理论的框架内调查耦合的运输和断裂变形/传播。开发并利用3D有限元方法来离散化程方程。为了模拟裂缝/矩阵系统的热压机械行为,基于凝聚区模型(CZM)实现特殊的零厚接口元件,以模拟拉伸和剪切故障。裂缝和周围可渗透岩体之间的流体磁通/热交换由满足内部边界的质量和能量平衡的流体/传热系数确定,并允许在界面上进行温度和压力。进行数值分析以验证模型并说明在实验室中观察到的基本现象。详细研究了实验室规模的压裂和循环实验,揭示了水热机械性能和偶联工艺的作用。

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