煤层超高压水力割缝参数优化与增透效果研究

    Study on parameter optimization and permeability enhancement effect of ultra-high pressure hydraulic slotting in coal seams

    • 摘要: 针对贵州五轮山煤矿8号低透气性突出煤层普遍存在的瓦斯抽采效率低、抽采周期长这一核心工程难题,本文聚焦超高压水力割缝卸压增透机制与实际应用效果研究。通过理论分析、COMSOL流固耦合数值模拟与现场试验相结合的系统研究方法,深入探究割缝步距对卸压增透效果的控制作用,优化关键工程参数并验证技术应用价值,验证了超高压水力割缝技术在扩大卸压范围与提升抽采效率方面的显著效果。研究结果表明:数值模拟依据煤层真实地质条件建立模型,设置了3 m、5 m、7 m三种割缝步距工况,模拟120 d抽采期瓦斯压力场演化,结果显示3 m步距可最早实现卸压区连通,消除卸压盲区;现场试验在该煤矿1809运顺巷开展,设计3 m密割缝、7 m疏割缝与未割缝三类钻孔对比,采用GF-100型系统施工。结果显示超高压水力割缝单刀形成的等效卸压半径平均为1.35 m,显著提升了煤体暴露面积与透气性。相较于未割缝钻孔,割缝钻孔瓦斯抽采浓度稳定在35%~52%,抽采纯量提升约1.94倍,且3 m密割缝模式在各项指标上均优于7 m疏割缝模式。采用优化后的超高压水力割缝技术可通过形成大范围卸压区与发达裂隙网络,显著增强煤层瓦斯抽采效率并延缓流量衰减,为同类地质条件下的瓦斯高效治理提供了可靠的技术途径与实践依据。

       

      Abstract: In response to the core engineering challenge of low gas drainage efficiency and extended extraction cycles commonly encountered in the No.8 low-permeability outburst coal seam of the Wulunshan Coal Mine in Guizhou, this paper focuses on the mechanisms and practical application effects of ultra-high pressure hydraulic slotting for pressure relief and permeability enhancement. Adopting a systematic research approach combining theoretical analysis, COMSOL fluid-solid coupling numerical simulation, and field experiments, the study investigates the controlling effect of slotting spacing on pressure relief and permeability enhancement, optimizes key engineering parameters, and verifies the technical application value. It confirms the significant effectiveness of ultra-high pressure hydraulic slotting technology in expanding the pressure relief range and improving gas drainage efficiency. The results show that: based on the actual geological conditions of the coal seam, numerical simulations are conducted for three slotting spacing scenarios—3 m, 5 m, and 7 m—simulating the evolution of the gas pressure field over a 120-day extraction period. The results indicate that a 3 m spacing enables the earliest connectivity of pressure relief zones and eliminates blind areas of pressure relief. Field experiments are carried out in the 1809 transportation roadway of the mine, comparing three types of boreholes: dense slotting with 3 m spacing, sparse slotting with 7 m spacing, and non-slotting boreholes, using a GF-100 system for construction. The results demonstrate that a single slot created by ultra-high pressure hydraulic slotting achieves an average equivalent pressure relief radius of 1.35 m, significantly increasing the exposed surface area and permeability of the coal mass. Compared to non-slotting boreholes, slotting boreholes maintain a stable gas drainage concentration of 35%-52%, with the pure gas extraction volume increasing by approximately 1.94 times. Moreover, the dense slotting mode with 3 m spacing outperforms the sparse slotting mode with 7 m spacing across all indicators. The optimized ultra-high pressure hydraulic slotting technology can form extensive pressure relief zones and develop fracture networks, significantly enhancing gas drainage efficiency and delaying flow attenuation. This provides a reliable technical approach and practical basis for efficient gas control under similar geological conditions.

       

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