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隧道建设(中英文) ›› 2026, Vol. 46 ›› Issue (S1): 387-396.DOI: 10.3973/j.issn.2096-4498.2026.S1.033

• 地质与勘察 • 上一篇    下一篇

隧洞持续性碎屑流施工期勘察与防治——以绰斯甲水电站引水隧洞为例

钟果1, 崔正伟2, *, 张世殊1, 马金根1, 肖华波1, 胡清龙2, 王能峰1   

  1. (1. 中国电建集团成都勘测设计研究院有限公司, 四川 成都 610072; 2. 四川中水成勘院工程物探检测有限公司, 四川 成都 610072)
  • 出版日期:2026-06-30 发布日期:2026-06-30
  • 作者简介:钟果(1983—),男,四川成都人,2005年毕业于成都理工大学,环境工程专业,本科,正高级工程师,主要从事水电工程勘察设计工作。E-mail: 286404468@qq.com。*通信作者: 崔正伟, E-mail: 2984471040@qq.com。

Investigation and Prevention Measures for Persistent Debris Flows During Tunnel Construction: A Case Study of Diversion Tunnel at Chuosijia Hydropower Station

ZHONG Guo1, CUI Zhengwei2, *, ZHANG Shishu1, MA Jingen1, XIAO Huabo1, HU Qinglong2, WANG Nengfeng1   

  1. (1. PowerChina Chengdu Engineering Corporation Limited, Chengdu 610072, Sichuan, China; 2. Sichuan Zhongshui Geophysical Exploration Corporation Limited., Chengdu 610072, Sichuan, China)
  • Online:2026-06-30 Published:2026-06-30

摘要: 绰斯甲水电站引水隧洞四夹壁上沟段在开挖过程中遭遇断层,洞室顶拱出现塌方,岩水混合后形成碎屑流持续涌出,难以进行有效支护,对隧洞开挖安全构成严重威胁。为解决该问题,采用地质调查、地震波超前探测和三维地质建模等综合技术手段,分析碎屑流灾害演化过程,探明断层带规模及空间展布并采取相应的处置措施。研究结果表明: 1)陡倾逆断层f7-17与地表沟谷存在水力联系,开挖扰动导致断层阻水结构破坏,地表水下渗与断层带内碎屑物质充分混合后形成碎屑流; 2)通过“封闭反压—临近段加强支护—正面多层封堵—回填后注浆—岩水分离”的综合处置措施,碎屑流涌出速度得到有效抑制,涌出量从15 m3/h降至0.5 m3/h,支护结构最大应变趋于稳定; 3)提出的“地质分析—物探预测—三维模拟—精准支护”的持续性断层碎屑流防治处理思路可为同类型灾害的预测和处理提供参考。

关键词: 隧洞, 碎屑流, 地质勘察, 超前地质预报, 三维地质模型

Abstract: The Chuosijia Hydropower Station’s diversion tunnel encountered a fault zone during the excavation of the Sijiabishang Gully. This fault zone is accompanied by roof collapse and continuous debris flow formation due to water-rock mixing, making it difficult to install supports effectively and endangers tunnel safety. To identify fault zone size and spatial distribution, assess debris flow evolution mechanisms, and develop mitigation methods, an integrated technical approach comprising geological study, sophisticated seismic wave detection, and three-dimensional (3D) geological modeling is used. According to research findings, the steeply descending reversal fault f7-17 has hydraulic interaction with surface gullies. Excavation-induced disturbance weakens the fault’s water-resisting structure, allowing surface water infiltration and subsequent mixing with fault gouge to produce debris flow. By implementing comprehensive countermeasures including closed counter-pressure, adjacent section reinforcement, multi-layer frontal sealing, post-backfill grouting, and rock-water separation, debris flow discharge rate was effectively controlled from 15 m3/h to 0.5 m3/h, with maximum strain in support structures stabilizing. The proposed progressive prevention framework of “geological analysis-geophysical prediction-3D simulation-precision support” for continuous fault-induced debris flow management provides technical references for prediction and treatment of analogous geological hazards.

Key words: tunnel, fault-induced debris flow, geological investigation, advance geological prediction, three-dimensional geological modeling