煤炭工程 ›› 2026, Vol. 58 ›› Issue (7): 90-96.doi: 10.11799/ce202607012

• 生产技术 • 上一篇    下一篇

井下定向长钻孔水力压裂防冲机理及效果分析

杨光宇,梁士昌,陆 闯,白 林,陈学慧,魏 伟,魏宏斌,林 鹏   

  1. 1. 中煤科工开采研究院有限公司,北京 100013

    2. 天地科技股份有限公司 开采设计事业部,北京 100013

    3. 中煤科工(西安)开采工程技术有限公司,陕西 西安 710000

    4. 中煤陕西榆林能源化工有限公司,陕西 榆林 719100

    5. 中煤陕西能源化工集团有限公司,陕西 榆林 719100

    6. 陕西延长石油矿业有限责任公司,陕西 西安 727406

  • 收稿日期:2025-10-15 修回日期:2026-02-01 出版日期:2026-07-15 发布日期:2026-08-03
  • 通讯作者: 杨光宇 E-mail:ustb_guangyu@163.com

Mechanism and effect analysis of underground directional longhole hydraulic fracturing for rockburst prevention

  • Received:2025-10-15 Revised:2026-02-01 Online:2026-07-15 Published:2026-08-03

摘要:

针对厚硬顶板下冲击地压工作面高位顶板难以实现大范围卸压的问题,以大海则煤矿20101工作面为工程背景,采用理论分析、工程实例演算与现场监测相结合的方法,研究了井下定向长钻孔水力压裂的防冲机理,并评估了其压裂效果与防冲效能。结果表明:该技术可在厚硬顶板内形成网状裂隙,弱化岩层完整性、减小破断步距,同时促进采空区矸石充分垮落并支撑上覆岩层,有效降低煤岩体静、动载应力;施工压力与流量变化、疏水孔出水特征证实目标岩层裂隙充分发育并相互贯通,造缝效果良好。现场监测数据显示,压裂区微震事件总频次、总能量分别下降55.57%、67.87%,大能量微震事件显著减少;工作面周期来压步距与动载系数分别下降17.9%、27.1%,非周期来压阶段支架阻力基本稳定。研究证实井下定向长钻孔水力压裂可有效防控厚硬顶板诱发的冲击地压,可为同类矿井灾害治理提供参考。

Abstract:

To address the difficulty of achieving large-scale pressure relief in high-position thick and hard roofs of rockburst-prone working faces, theoretical analysis and field monitoring methods were employed to investigate the mechanism of underground directional long-hole hydraulic fracturing for rockburst prevention and to evaluate its fracturing and control effects. The results indicate that: (1) The underground directional long-hole hydraulic fracturing technique injects fracturing fluid into thick and hard strata to generate fractures, thereby degrading the rock integrity and weakening its capacity to accumulate elastic energy. Meanwhile, the increased fracture density promotes the timely caving of the thick and hard roof in the goaf, which provides supporting effects on the overlying strata and effectively reduces both static and dynamic stresses in the surrounding coal and rock mass. (2) Analysis of borehole pressure, fracturing fluid flow curves, and water discharge during the fracturing process reveals the initiation and propagation of fractures, forming a fracture network and significantly impairing the integrity of the hard roof. (3) After implementing hydraulic fracturing, both the total energy release and frequency of microseismic events are substantially reduced, with a notable decrease in high-energy events. Additionally, the periodic weighting interval and dynamic load coefficient are lowered, while the working resistance during non-periodic weighting remains relatively stable.

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