煤炭工程 ›› 2024, Vol. 56 ›› Issue (6): 135-143.doi: 10. 11799/ ce202406021

• 研究探讨 • 上一篇    下一篇

窄煤柱厚硬砂岩顶板防冲弱化裂隙发育规律

苏士杰,孙如达,赵 乾,马 平,夏永学   

  1. 1. 中国中煤能源股份有限公司,北京 100120 2. 中煤科工开采研究院有限公司,北京 100013
  • 收稿日期:2023-12-20 修回日期:2024-03-14 出版日期:2023-06-20 发布日期:2025-01-08
  • 通讯作者: 孙如达 E-mail:756987810@qq.com

Development law of anti-erosion crack of narrow coal pillar thick hard

  • Received:2023-12-20 Revised:2024-03-14 Online:2023-06-20 Published:2025-01-08
  • Contact: da RuSUN E-mail:756987810@qq.com

摘要:

针对坚硬顶板工程尺度条件下压裂防冲裂隙演化规律研究不足造成压裂效果难以评价的难题, 选取门克庆煤矿3106工作面为工程背景, 以高位厚硬砂岩顶板长孔水力压裂研究为切入点, 选取钻孔漏失率及瞬变电磁技术, 研究坚硬顶板压裂前、后不同层位岩层裂隙钻孔漏失率与瞬变电磁电阻率的时空演化规律, 验证了坚硬顶板弱化前、后覆岩裂隙发育规律及扩展范围, 为水压致裂裂隙演化规律及影响范围的压裂效果评价提供理论指导。研究结果表明: 当钻孔处于裂隙不发育区域时, 压裂层位所在区域压裂前、后钻孔漏失量呈现出明显的倍数增长趋势, 从钻孔漏失量角度验证了压裂岩层区域的裂缝扩展范围, 结合瞬变电磁在岩层裂隙含水量增加后呈现的降阻现象验证了裂隙发育范围的可靠性, 为水力致裂裂隙演化规律及影响范围研究提供理论指导, 为坚硬顶板工程尺度条件下水力压裂效果评价提供了新方法。

关键词: 压裂扩展范围 , 厚硬砂岩 , 冲击地压 , 裂隙演化规律 , 钻孔漏失率

Abstract:

Aiming at the problem that it is difficult to quantify the effect of fractured rock strata due to insufficient research on the evolution law of fracturing anti-scour fracture under the condition of hard roof engineering scale, the 3106 working face of Menkeqing Coal Mine is selected as the engineering background, and the research on long-hole hydraulic fracturing of narrow coal pillar high thick hard sandstone roof is taken as the starting point. Borehole leakage rate and transient electromagnetic technology were selected to study the temporal and spatial evolution law of rock fracture development, borehole leakage rate and transient electromagnetic resistivity at different strata before and after hard roof fracturing, and quantify the development law and expansion range of overburden rock fracture before and after the hard roof weakening of narrow coal pillar, providing theoretical guidance for the study of hydraulic fracture evolution law and influence range. The results show that: When the borehole is in the region affected by mining movement, the borehole leakage before and after fracturing does not change significantly. When the borehole is in the region where the original rock fracture is not developed, the borehole leakage before and after fracturing presents a multiple increase. The change of borehole leakage before and after fracturing obviously indicates the fracture expansion in the upper and lower ranges of the fractured formation. The range of fracture propagation in fractured formations is quantified from the engineering scale, and the resistance reduction phenomenon occurs when the water content in fractures increases due to the interpenetration of the fracture network in this formation is verified by the transient electromagnetic technology, which indicates that the development effect of hydraulic fracture is good, and the reliability of the weakening effect of hard roof is verified, providing theoretical guidance for the study of the evolution law and influence range of hydraulic fracture.

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