煤矿深孔定向爆破切顶卸压技术与应用

Deep-hole directional blasting for roof cutting and pressure relief in coal mines and its applications

  • 摘要: 为解决厚煤层顶板压力大导致巷道支护困难及煤柱稳定性差等问题,提出基于聚能药包的深孔定向爆破切顶卸压技术。通过理论分析揭示了聚能药包对围岩应力场重分布的控制机制,采用LS-DYNA数值模型,系统研究不同爆破参数对裂纹贯通特征的影响规律。以某矿15115工作面为背景,优化设计钻孔长度、钻孔间距、切顶高度、装药量及装药结构等关键参数,并开展现场工业试验和卸压效果评价。研究结果表明:采区顶板聚能药包爆破后,炸药能量优先向聚能方向释放,在相同装药量情况下,主裂缝长度显著高于非聚能方向的裂缝长度,其长度比为4.2∶1.0;相邻巷道的卸压段顶底板最大移近量较非卸压段顶底板最大移近量降低了82%,切顶巷道中聚能方向岩体平均抗压强度较垂直聚能方向岩体平均抗压强度降低约27%;聚能药包深孔定向爆破切顶卸压技术可以有效引导裂纹沿预设路径扩展,显著降低顶板悬顶长度及垮落的回转挤压对煤柱压力的影响,验证了基于聚能药包的切顶卸压护巷技术的有效性。研究结果可为深部高应力复杂地质条件下的巷道稳定性控制研究提供借鉴。

     

    Abstract: This study proposes a deep-hole directional blasting technology based on polymer energy charge packages for roof cutting and pressure relief as a solution to difficult roadway support and poor stability of coal pillars due to high pressure of composite roof plate in thick coal seams. Specifically, we probed into the control mechanism of polymer energy charge packages on the redistribution of stress field in surrounding rocks through theoretical analysis and analyzed how varying blasting parameters affect fracture penetration through LS-DYNA numerical modelling. The 15115 working face of a mine was taken for analysis to optimize key parameters such as borehole depth, spacing, roof cutting height, charge volume and charge structure, coupled with on-site industrial experiments and evaluation of pressure relief. After the blasting of polymer energy charge packages on the roof of the mining area, explosive energy was preferentially released in the direction of polymer energy. With identical charges, it generated main fractures that were significantly longer compared to that in the non-polymer energy direction, with a length ratio of 4.2∶1.0. The maximum displacement of the top and bottom plates in the adjacent roadway was reduced by 82% in the pressure-relieved section than that in the non-pressure-relieved ones. In the roof cutting roadway, the average compressive strength of the rock mass was reduced by 27% in the direction of polymer energy compared with that in the direction perpendicular to the polymer energy. Results verified the validity of the proposed technology for its effective directing of fracture expansion along the preset path, which significant reduced the length of the roof plate overhanging the roof and the collapse of the rotary extrusion on the coal column pressure. This study therefore offers references for controlling roadway stability under complex, high-stress geological conditions in deep mines.

     

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