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首页> 外文期刊>International journal of geomechanics >Thermal-Stress-Aperture Coupled Model for Analyzing the Thermal Failure of Fractured Rock Mass
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Thermal-Stress-Aperture Coupled Model for Analyzing the Thermal Failure of Fractured Rock Mass

机译:热应力 - 孔径耦合模型,用于分析裂缝岩体的热失效

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摘要

When rock is subjected to thermal load, primary fractures in the rock will block the heat conduction and greatly affect the temperature distribution, which in turn modifies the distribution of thermal stress and, hence, causes additional cracks to the rock. Therefore, it is essential to reasonably describe the heat conduction and thermal fracturing processes of the rock mass upon heating treatment. This study proposed a thermal-stress-aperture coupled model for investigating the thermally induced failure process of fractured rock mass. First, the mesomechanical parameters of the bonds in the cluster model based on the particle flow code were calibrated and verified under different temperatures. To more realistically simulate the thermal and mechanical behaviors across the fractures, the relationships of the aperture with the thermal and mesomechanical parameters of the bonds, including the thermal conductivity, effective modulus, tensile strength, and shear strength, were established and calibrated. The thermal-aperture- and stress-aperture-dependent models were introduced to the thermal-stress-aperture coupled model. Finally, the proposed coupled model was adopted to numerically investigate the influences of the discrete fracture network on the heat conduction, thermally induced failure, and mechanical behaviors of the fractured rock. The results indicate that the temperature distribution, thermal-induced failure, and stress-strain curves are significantly sensitive to the average fracture aperture, average fracture length, and fracture density. In addition, with an increase in the average fracture aperture, average fracture length, and fracture density, both the uniaxial compressive stress and elastic modulus exhibit decrease trends. The fracture density has the most significant influence on the mechanical behaviors of the fractured rock.
机译:当岩石经受热负荷时,岩石中的初级骨折将阻塞热导热,极大地影响温度分布,这反过来改变热应力的分布,因此导致岩石的额外裂缝。因此,必须合理地描述加热处理时岩体的热传导和热压裂过程。该研究提出了一种热应力 - 孔径耦合模型,用于研究裂缝岩体的热诱导的故障过程。首先,基于粒子流代码的簇模型中的键合模型中键的融合参数进行校准并在不同的温度下验证。为了更现实地模拟骨折上的热和机械行为,建立和校准孔径与粘合剂的热和型机械参数的关系,包括导热性,有效模量,拉伸强度和剪切强度。将热孔和应力 - 孔径依赖性模型引入热应力 - 孔径耦合模型。最后,采用了所提出的耦合模型来数值上研究离散裂缝网络对裂缝岩石的导热,热诱导的故障和机械行为的影响。结果表明,温度分布,热诱导的故障和应力 - 应变曲线对平均骨折,平均断裂长度和断裂密度显着敏感。另外,随着平均骨折孔径,平均断裂长度和断裂密度的增加,单轴压缩应力和弹性模量都表现出降低趋势。断裂密度对裂缝岩石的机械行为产生最大的影响。

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