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A fracture aperture dependent thermal-cohesive coupled model for modelling thermal conduction in fractured rock mass

机译:用于模拟裂隙岩体中导热的基于裂缝孔径的热固耦合模型

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Due to thermal resistance characteristics of fractures, to realistically assess thermal effects of fractured rock mass, it should correctly reflect the thermal interaction between fracture interfaces. In this study, the coupled FEM-DEM method is extended to model transient thermal conduction in fractured rock mass. Rock matrix and fractures are discretized into solid elements and cohesive elements, respectively. To simulate thermal conduction across fractures, the cohesive element is coupled with a thermal model (thermal-cohesive model) by incorporating an aperture dependent interfacial thermal conductivity. Validation simulations indicate that the proposed model is capable of capturing the temperature jumps across the fractures with different apertures. Then, the influences of fracture characteristics on thermal conduction were numerically investigated. Finally, thermal conduction in highly fractured rock mass was studied by a model with multiple randomly distributed fractures generated through Monte-Carlo algorithm. The results indicate that the temperature gradient and heat flux field of rock mass containing a single fracture are quite sensitive to fracture orientation and aperture. Compared with the linear behavior between the ETC and fracture aperture in rock mass containing a single fracture, the relationship between the ETC and fracture aperture in highly fractured rock mass presents strong nonlinear characteristic.
机译:由于裂缝的热阻特性,为了切实评估裂缝岩体的热效应,应正确反映裂缝界面之间的热相互作用。在这项研究中,耦合FEM-DEM方法被扩展到模拟裂隙岩体中的瞬态热传导。岩石基质和裂缝分别离散为固体元素和粘性元素。为了模拟跨裂缝的热传导,通过结合取决于孔的界面热导率,将内聚元件与热模型(热内聚模型)耦合。验证仿真表明,所提出的模型能够捕获具有不同孔径的裂缝上的温度跃变。然后,数值研究了断裂特性对导热的影响。最后,利用蒙特卡洛算法产生的具有多个随机分布的裂缝的模型研究了高裂隙岩体中的热传导。结果表明,包含单个裂缝的岩体的温度梯度和热通量场对裂缝的方向和孔径非常敏感。与包含单个裂缝的岩体中ETC和裂隙孔径之间的线性关系相比,高度裂隙岩体中ETC和裂隙孔径之间的关系具有很强的非线性特征。

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