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Investigation of thermal-induced damage in fractured rock mass by coupled FEM-DEM method

机译:通过耦合FEM-DEM法调查骨折岩体热引起损伤

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In this study, a 3D coupled FEM-DEM method was adopted to study the influence of thermal-induced damage on the mechanical properties of fractured rock mass. In this method, the rock matrix was discretized into bulk elements bridged by cohesive elements, and the preexisting fractures were represented by cohesive elements. The thermal-induced damage process was modeled through two parts, i.e., thermal conduction and thermal-mechanical coupling. For thermal conduction process, a proposed 3D thermal-cohesive coupled model with a fracture aperture-dependent interfacial thermal conductivity was adopted to simulate the thermal conduction across the fractures, which make it possible to more precisely predict the temperature distribution. Then, the thermal stress induced by temperature variation was coupled to perform the mechanical-failure calculation. Validation simulations indicated that the proposed model is capable of dealing with the thermal-induced damage problems. Then, the influences of fracture aperture on thermal-induced damage in highly fractured rock mass were numerically investigated by the Brazilian disc tests with multiple randomly distributed fractures. The results indicated that as the fracture aperture increases, the area of thermal-induced damage zone increases and the Brazilian tensile strength (BTS) decreases nonlinearly.
机译:在该研究中,采用了3D耦合的FEM-DEM方法来研究热诱导损伤对裂缝岩体力学性能的影响。在该方法中,将岩石基质离散化成桥接的堆积元素,并且预先存在的裂缝由粘性元素表示。热诱导的损伤过程通过两部分,即热导通和热机械连接建模。对于热传导过程,采用具有骨折孔径依赖性界面导热率的提出的3D热粘结耦合模型来模拟骨折的热导通,这使得可以更精确地预测温度分布。然后,通过温度变化引起的热应力耦合以执行机械故障计算。验证模拟表明,所提出的模型能够处理热引起的损伤问题。然后,通过多次随机分布的裂缝对巴西圆盘测试进行数值研究了骨折孔对高度裂缝岩体热引起损伤的影响。结果表明,随着断裂孔径的增加,热诱导损伤区的面积增加,巴西拉伸强度(BTS)非线性降低。

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