煤炭工程 ›› 2026, Vol. 58 ›› Issue (8): 134-141.doi: 10.11799/ce202608017

• 研究探讨 • 上一篇    下一篇

巨厚砂岩顶板运动诱发冲击地压机制研究

张惟昭,崔 恒,董近兴,张 坤,方 海,王青振,汪林志   

  1. 1. 山东能源集团西北矿业有限公司,陕西 西安 710018

    2. 中国矿业大学 煤炭精细勘探与智能开发全国重点实验室,江苏 徐州 221116

  • 收稿日期:2025-12-16 修回日期:2026-03-20 出版日期:2026-08-15 发布日期:2026-08-31
  • 通讯作者: 董近兴 E-mail:donginxing09@163.com

Research on the Mechanism of Impact Disaster of Extremely Thick Sandstone Roof

  • Received:2025-12-16 Revised:2026-03-20 Online:2026-08-15 Published:2026-08-31

摘要:

巨厚砂岩顶板在千米深矿井普遍存在,研究多工作面大尺度采空区对上覆巨厚砂岩顶板的破断、回转运动以及能量释放是开展冲击地压防治的基础。以正通煤业二盘区为工程背景,结合理论分析和相似模拟对巨厚砂岩顶板冲击地压发生机制进行探讨。研究表明:巨厚砂岩顶板的初次破断能量大于周期破断,其中破断能量与岩层厚度和抗拉强度呈正相关,与工作面宽度和上覆荷载呈负相关,初次破断能量与周期破断能量的差值与工作面宽度呈正比;在工作面开采过程中,煤层的应力随着亚关键层1、亚关键层2、主关键层的破断呈阶梯型增加;主关键层随着开采过程会经历悬顶距增加、弯曲下沉和破裂发育三个阶段。该研究成果对相似工程条件下的冲击地压机理研究提供理论基础。

关键词: 冲击地压, 巨厚砂岩顶板, 相似模拟, 覆岩结构, 采动效应

Abstract:

Extremely thick sandstone roof slabs frequently occur in mines at depths exceeding one thousand metres. Investigating the fracture, rotational movement, and energy release of these overlying sandstone slabs in large-scale goaf areas with multiple working faces forms the foundation for preventing and controlling rock bursts. Using the second block area of Zhengtong Coal Industry as the engineering context, this paper examines the mechanism of rock bursts in extremely thick sandstone roofs through a combination of theoretical analysis and similar simulations. Research indicates that the initial breaking energy of the extremely thick sandstone roof exceeds the periodic breaking energy. This breaking energy correlates positively with the thickness of the rock layer and the tensile strength, while it correlates negatively with the width of the working face and the overburden load. The disparity between the initial breaking energy and the periodic breaking energy is directly proportional to the width of the working face. Throughout the mining process, the stress within the coal seam increases incrementally as sub-critical layer 1, sub-critical layer 2, and the main critical layer fracture. The main critical layer undergoes three stages during mining: an increase in suspension distance, bending and subsidence, followed by the development of fractures. This research achievement establishes a theoretical foundation for investigating the mechanisms of rock bursts under analogous engineering conditions.

中图分类号: