煤炭工程 ›› 2025, Vol. 57 ›› Issue (12): 49-55.doi: 10. 11799/ ce202512007

• 施工技术 • 上一篇    下一篇

西部软岩大硐室围岩稳定性分析及支护优化

马忠辉   

  1. 国家能源投资集团有限责任公司,北京 100011
  • 收稿日期:2025-10-12 修回日期:2025-11-08 出版日期:2025-12-11 发布日期:2026-01-26
  • 通讯作者: 王磊 E-mail:936686850@qq.com

Stability analysis and support optimization for soft rock large chamber in western China

  • Received:2025-10-12 Revised:2025-11-08 Online:2025-12-11 Published:2026-01-26

摘要:

针对我国西部软岩地层中煤矿大硐室围岩变形机理不清、支护设计困难等问题,以鄂尔多斯矿区井底装载硐室为工程背景,综合采用FLAC3D数值模拟与现场实测方法,系统研究了大硐室开挖支护后的围岩稳定性及变形演化规律。模拟结果表明:硐室顶板及与斜井连接处变形显著,两帮、顶板及底板塑性区厚度分别为655.5m,需采用长度7.5~8m的锚索进行补强支护。现场监测显示,锚杆锚索受力在支护后迅速上升,随后趋于稳定,硐室内部测点约20d达到稳定,应力集中区约15d稳定;所有测点受力均低于破断荷载,证实支护结构安全可靠。该研究成果可为西部软岩地层大硐室支护设计提供了关键参数与理论依据,对类似工程具有重要参考价值。

关键词: 西部地区, 软岩, 大硐室, 锚杆支护, 锚索支护

Abstract:

In the construction of large chambers and chamber groups in coal mines in the western region of China, there are common difficulties such as unclear deformation laws of surrounding rock in chambers and great difficulty in support, which has become one of the main factors restricting the safe construction of large chambers in coal mines. Based on the construction project of bottom loading chambers in the Hongqingliang Coal Mine in Ordos, a three-dimensional computational model of the chamber was established using FLAC3D to simulate the stability and long-term stability of the chamber after one-time support excavation. It was found that the deformation of the surrounding rock is significant in the upper roof of the chamber and at the connection between the chamber and the inclined shaft; the thickness of the plastic zone in the two sides area is about 6 m, the thickness of the plastic zone in the roof is about 5 m, and the thickness of the plastic zone in the bottom is about 5.5 m. Strengthening of anchor support is required, with recommended anchor lengths of 7.5 to 8 m. Engineering measurements showed that after excavation and support of the chamber, the stress on the anchor rods and cables increased rapidly in the initial stage and gradually stabilized in the later stage. The stable deformation time of the internal anchor rods and cables in the chamber is approximately 20 days, and the stable zone of stress concentration at the connection between the chamber and the inclined shaft is approximately 15 days. The measured stress on the anchor rods and cables is less than the breaking load, indicating that the overall support structure of the chamber is stable and safe. The research results will provide data reference and theoretical support for the construction of similar large chambers in soft rock formations in the western region.

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