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隧道建设(中英文) ›› 2026, Vol. 46 ›› Issue (S1): 456-466.DOI: 10.3973/j.issn.2096-4498.2026.S1.040

• 施工技术 • 上一篇    下一篇

高地应力破碎软弱围岩隧道严重大变形主动控制技术及工程应用

谭忠盛1, 张宝瑾1, 赵金鹏1, 2, *, 周振梁1, 李庆楼1, 张武1   

  1. (1. 北京交通大学土木建筑工程学院, 北京 100044; 2.  北京科技大学未来城市学院, 北京 100083)
  • 出版日期:2026-06-30 发布日期:2026-06-30
  • 作者简介:谭忠盛(1963—),男,广西梧州人,1999年毕业于西南交通大学,土木工程专业,博士,教授,主要从事隧道及地下工程科研工作。 E-mail: zhshtan@bjtu.edu.cn。 *通信作者: 赵金鹏, E-mail: 18115060@bjtu.edu.cn。

Active Control Technology and Engineering Application for Severe Large Deformation of Tunnels in Fractured Weak Surrounding Rock Under High Insitu Stress

TAN Zhongsheng1, ZHANG Baojin1, ZHAO Jinpeng1, 2, *, ZHOU Zhenliang1, LI Qinglou1, ZHANG Wu1   

  1. (1. School of Civil Engineering, Beijing Jiaotong University, Beijing 100044, China; 2. School of Future Cities, University of Science and Technology Beijing, Beijing 100083, China)
  • Online:2026-06-30 Published:2026-06-30

摘要: 为解决西南山区隧道建设中面临的高地应力构造破碎软弱围岩严重挤压大变形及传统被动支护频繁失效难题,以滇藏铁路哈巴雪山隧道和中老铁路会富莱隧道为依托,采用理论分析、数值模拟、现场试验和监控量测相结合的方法,分析高地应力条件下2类构造破碎软弱围岩隧道的变形特征及控制需求,提出以“应力主动调控与转移”为核心的主动控制理念及技术。研究表明,2座依托隧道工程岩性不同,但均具有强度应力比低、构造挤压显著、水平收敛占主导、支护闭合前变形速率高等共同特征。其中,会富莱隧道主要表现为炭质板岩软岩挤压性大变形,哈巴雪山隧道主要表现为片理化、碎裂化玄武岩及板岩在极高地应力作用下的挤压-结构控制复合型大变形。提出“超前地应力释放+超前注浆加固及径向补强+长短(预应力)锚杆结合”的主动控制体系。结果表明: 1)平行导洞对正洞具有一定的卸压作用,兼具辅助施工价值,平导与正洞间距以40~50 m为宜; 2)中导洞面积比取0.6时,应力峰值可向深部转移约4 m; 3)超前及径向注浆可改善浅部围岩完整性,长短锚杆组合可实现浅部约束与深部传力协同。工程应用表明,该体系可使仰拱封闭时间缩短约50%,拱顶沉降与水平收敛分别减少40.7%和89.6%,支护结构受力处于安全设计范围,能有效降低隧道大变形段换拱、侵限和衬砌开裂风险。

关键词: 高地应力隧道, 破碎软弱围岩, 严重大变形, 变形特征, 主动控制技术

Abstract: To address the severe large squeezing deformation of tectonically fractured weak surrounding rock under high in-situ stress and the frequent failure of conventional passive support during tunnel construction in mountainous regions of southwestern China, this study takes the Haba Snow Mountain Tunnel of the Yunnan-Xizang Railway and the Huifulai Tunnel of the China-Laos Railway as engineering cases. A combined method involving theoretical analysis, numerical simulation, field testing, and monitoring measurement was adopted to investigate the deformation characteristics and control requirements of two types of tectonically fractured weak surrounding rock tunnels under high in-situ stress. An active control concept and corresponding technologies centered on “active stress regulation and transfer” were proposed. The results show that although the two engineering cases differ in lithology, they share common characteristics, including a low strength-stress ratio, significant tectonic compression, dominant horizontal convergence, and a high deformation rate before support closure. Specifically, the Huifulai Tunnel mainly exhibits large squeezing deformation of carbonaceous slate, whereas the Haba Snow Mountain Tunnel mainly exhibits compound squeezing-structural controlled large deformation of schistose and fractured basalt and slate under extremely high in-situ stress. An active control system consisting of “advance in-situ stress release + advance grouting reinforcement and radial strengthening + combined long and short prestressed bolts” was proposed. The results indicate that: (1) the parallel pilot tunnel has a certain stress-relief effect on the main tunnel and also provides auxiliary construction value, with a recommended spacing of 40-50 m between the parallel pilot tunnel and the main tunnel; (2) when the area ratio of the central pilot tunnel to the main tunnel is 0.6, the stress peak can be transferred approximately 4 m deeper into the surrounding rock; and (3) advance and radial grouting can improve the integrity of shallow surrounding rock, while the combined long and short bolts can realize the coordinated control of shallow confinement and deep load transfer. Engineering application shows that the proposed system can shorten the invert closure time by approximately 50%, reduce crown settlement and horizontal convergence by 40.7% and 89.6%, respectively, keep the stress of the support structure within the design safety range, and effectively reduce the risks of arch replacement, clearance intrusion, and lining cracking in large-deformation tunnel sections.

Key words: high in-situ stress, fractured weak surrounding rock, severe large deformation, deformation characteristics, active control technology