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深部巷道卸荷围岩破坏与补偿控制研究进展及展望

Research progress and prospects of failure mechanisms and compensative control of unloaded surrounding rock in deep roadways

  • 摘要: 卸荷是深部巷道围岩损伤演化与失稳破坏的重要驱动力之一。在“五高两扰动”复杂环境下, 深部巷道开挖后围岩易发生裂隙扩展、强烈变形、结构承载劣化及支护失效等工程问题。围绕卸荷围岩破坏与稳定控制主线, 分析了深部巷道卸荷围岩失稳力学研究、理论分析、控制技术等方面的研究进展。在卸荷试验方面, 总结了双轴、常规三轴、真三轴及相似模拟等卸荷试验装备与研究方法的发展, 研究了考虑刚度效应、多场耦合及扰动作用条件下围岩卸荷力学响应、裂纹扩展与破坏演化规律; 在卸荷理论方面, 借助应力强度因子研究围岩静态损伤破坏裂纹扩展机理, 提出了高应力岩体的动态损伤本构模型, 推导了巷道开挖的卸荷应力场解析解; 在卸荷围岩控制方面, 从应力约束补偿、结构承载补偿和应力环境补偿层面, 梳理了表层支护、内部锚固、注浆改性、定向卸压等巷道围岩补偿控制技术特点。分析煤矿井下巷道围岩控制中存在的问题, 需要继续开展深部多场耦合机理与智能预测方法、围岩智能化自适应控制技术、面向多资源协同开采的围岩功能重构等方面的研究。

     

    Abstract: Unloading is one of the key drivers behind the damage evolution and instability failure of surrounding rock in deep roadways. Under the complex environment characterized by "five-high and two-disturbance" conditions, the excavation of deep roadways often leads to engineering challenges such as crack propagation, severe deformation, degradation of structural bearing capacity, and support failure. Focusing on the main theme of failure and stability control of unloaded surrounding rock, this paper reviews research progress in the mechanical studies, theoretical analysis, and control technologies related to the instability of unloaded surrounding rock in deep roadways. In terms of unloading experiments, the development of testing equipment and methods for biaxial, conventional triaxial, true triaxial, and similarity simulation tests is summarized, and the mechanical response, crack propagation, and failure evolution of surrounding rock under unloading conditions considering stiffness effects, multi-field coupling, and disturbance impacts are investigated. Regarding unloading theory, the crack propagation mechanism of static damage and failure in surrounding rock is explored using stress intensity factors. Meanwhile, a dynamic damage constitutive model for high-stress rock masses is proposed, and an analytical solution for the unloading stress field around an excavated roadway is derived. For the control of unloaded surrounding rock, compensation control techniques for roadway surrounding rock, including surface support, internal anchoring, grouting modification, and directional pressure relief, are categorized from the perspectives of stress constraint compensation, structural bearing compensation, and stress environment compensation. Based on analysis on existing issues in the control of roadway surrounding rock in underground coal mines, future research should further explore the multi-field coupling mechanisms and intelligent prediction methods in deep mining, intelligent adaptive control technologies for surrounding rock, and functional reconstruction of surrounding rock for coordinated multi-resource extraction.

     

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