煤炭工程 ›› 2026, Vol. 58 ›› Issue (5): 57-66.doi: 10.11799/ce202605008

• 施工技术 • 上一篇    下一篇

高应力采动巷道大直径卸压钻孔关键参数优化

高登彦   

  1. 1. 国能神东煤炭集团有限责任公司 寸草塔二矿,内蒙古 鄂尔多斯 017200

    2. 中国矿业大学 矿业工程学院,江苏 徐州 221116

  • 收稿日期:2025-09-22 修回日期:2026-01-04 出版日期:2026-05-15 发布日期:2026-05-27
  • 通讯作者: 高登彦 E-mail:18175317599@163.com

Optimization and engineering practice of key parameters for large-diameter pressure-relief boreholes in highly-stressed mining-affected roadways

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  • Received:2025-09-22 Revised:2026-01-04 Online:2026-05-15 Published:2026-05-27
  • Contact: dengyan gaodengyangao E-mail:18175317599@163.com

摘要:

针对寸草塔二矿110工作面回风巷因多工作面采动叠加导致的应力集中超限、巷道变形剧烈等工程难题,采用大直径钻孔治理技术,通过理论分析卸压机理、结合FLAC3D数值模拟,系统研究孔径、孔深、 孔距对巷帮应力与位移的影响规律,明确最优卸压参数及调整方向,并通过工程实践验证了方案的有效性。研究结果表明:钻孔后应力峰值降低且转移至深部,孔径过小卸压效果不明显,孔径增大卸压区域逐步增大,孔径过大煤壁失去承载能力,确定最优孔径为0.3m孔深过小没有卸压效果,孔深增大应力峰值降低且向深部转移,卸压效果增强,卸压范围增大,孔深增大至15m后卸压效果不再增强。确定最优卸压孔深范围为9~15mLp<Lh≤3.3Lp)。孔距减小钻孔间由双应力核逐渐演变为单应力核,应力形态分别为双峰型(分离态及过渡态)、单峰型、无峰型,钻孔间位移逐渐贯通。确定孔径 0.3m时最优卸压孔距为1.0~1.6m2X0≤L2≤2X0+2D)。工程实践结果表明:采用优化参数实施卸压后,巷道应力趋于稳定,顶底板及两帮收敛量分别下降86.15%86%,解决了应力集中超限与巷道变形剧烈的核心工程难题。

Abstract:

Aiming at the engineering problems such as excessive stress concentration and severe roadway deformation caused by the superposition of multi-working face mining in the return airway of the 110 working face of Cuncaota No.2 Mine, this paper adopts the efficient control technology of large-diameter boreholes. Through theoretical analysis of the pressure relief mechanism and combined with FLAC3D numerical simulation, it systematically studies the influence laws of borehole diameter, depth, and spacing on the stress and displacement of the roadway side, clarifies the optimal pressure relief parameters and adjustment directions, and finally verifies the effectiveness of the scheme through engineering practice. The research results show that: (1) After drilling, the stress peak decreases and shifts to the deep part. The pressure relief effect is not obvious when the borehole diameter is too small, while the pressure relief area gradually expands with the increase of borehole diameter. However, the coal wall loses its bearing capacity when the borehole diameter is excessively large, so the optimal borehole diameter is determined to be 0.3m. (2) If the borehole depth is too small, there is no pressure relief effect. As the borehole depth increases, the stress peak decreases and shifts to the deep part, the pressure relief effect is enhanced, and the pressure relief range expands. When the borehole depth increases to 15m, the pressure relief effect no longer improves, and the optimal pressure relief borehole depth range is determined to be 9m~15m (Lp<Lh≤3.3Lp). (3) With the decrease of borehole spacing, the double stress cores between boreholes gradually evolve into a single stress core, and the stress forms are bimodal (separated state and transitional state), unimodal, and non-peaked in turn, with the displacement between boreholes gradually connected. When the borehole diameter is 0.3m, the optimal pressure relief borehole spacing is determined to be 1.0m~1.6m (2X0≤L2≤2X0+2D). Engineering practice verification shows that after pressure relief using the optimized parameters, the roadway stress tends to be stable, and the convergence of the roof and floor as well as the two sides decreases by 86.15% and 86% respectively, solving the core engineering problems of excessive stress concentration and severe roadway deformation. The research results provide scientific support and engineering reference for the control of similar high-stress roadways affected by mining superposition.

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