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开采扰动诱发逆断层活化时空演化特征研究

Study on the Spatiotemporal Evolution Characteristics of Reverse Fault Reactivation Induced by Mining Disturbance

  • 摘要: 为研究深部煤层开采诱发逆断层活化的时空演化规律,采用理论分析、数值模拟与相似材料试验方法,分析了不同倾角逆断层(30°、45°、60°、75°)的活化特征。基于COMSOL建立数值模型,发现断层活化启动时间与倾角负相关,倾角越小,活化越早;活化程度与倾角正相关,倾角越大,活化越剧烈。上盘开采使断层下端先破坏并向上扩展,易引起冲击地压和底板突水;下盘开采则上端先活化并向下扩展,增加冒顶风险。相似材料试验验证了断层活化呈阶段性扩展的结论。研究成果为深部开采断层灾害防控和预警提供了理论依据。

     

    Abstract: Deep coal mining often faces the dual challenges of high ground stress and complex geological structures. Mininginduced fault activation is a key factor leading to rockburst and water inrush disasters. This study systematically investigates the spatiotemporal activation and evolution characteristics of reverse faults with different dip angles under the disturbance caused by extraction in the hanging wall and footwall,using a combination of theoretical analysis,numerical simulation applying COMSOL Multiphysics,and physical experiments with similar material. Theoretical analysis reveals the controlling effect of fault dip on the distribution of normal and shear stresses. Numerical simulation results indicate a negative correlation between fault activation initiation time and dip angle:As the dip angle decreases,the mining disturbance is more likely to reach the fault zone. The degree of activation is positively correlated with the dip angle,with higher-angle faults showing more intense activation. In terms of spatial evolution,during hanging wall extraction,the lower end of the fault is first damaged and extends upward,easily inducing floor water inrush and rockburst. During footwall extraction,the upper end is first activated and extends downward,increasing the risk of roof collapse. Similar material experiments confirmed the staged upward propagation of fault activation,with stress and displacement monitoring data closely matching the conclusions of the numerical simulations. This research systematically clarifies the intrinsic relationships among mining-induced stress paths, fault dip angles, and activation patterns, which provides reliable theoretical support and engineering guidance for zoned disaster prevention and early warning of fault-related hazards in deep mines.

     

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