Study on collapse mechanism and treatment measures of portal slope of a high-speed railway tunnel

被引:2
|
作者
Hu, Guoping [1 ]
Xia, Yingzhi [1 ]
Zhong, Lianggen [2 ]
Ruan, Xiaoxue [1 ]
Li, Hui [1 ]
机构
[1] Henan Univ Urban Construct, Sch Civil & Transportat Engn, Rd Bridge & River Crossing Engn, Pingdingshan 467036, Henan, Peoples R China
[2] Changjiu Interc Railway Co Ltd, Nanchang 330002, Jiangxi, Peoples R China
关键词
field monitoring; finite element method; open cut tunnel; rainfall; slope deformation; stabilization treatment; RAINFALL-INDUCED LANDSLIDE; PROGRESSIVE FAILURE; EXCAVATION; ZONE;
D O I
10.12989/gae.2023.32.1.111
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The slope of an open cut tunnel is located above the exit of the Leijia tunnel on the Changgan high-speed railway. During the excavation of the open cut tunnel foundation pit, the slope slipped twice, a large landslide of 92500 m3 formed. The landslide body and unstable slope body not only caused the foundation pit of the open cut tunnel to be buried and the anchor piles to be damaged but also directly threatened the operational safety of the later high-speed railway. Therefore, to study the stability change in the slope of the open cut tunnel under heavy rain and excavation conditions, a 3D numerical calculation model of the slope is carried out by Midas GTS software, the deformation mechanism is analyzed, anti-sliding measures are proposed, and the effectiveness of the anti-sliding measures is analyzed according to the field monitoring results. The results show that when rainfall occurs, rainwater collects in the open cut tunnel area, resulting in a transient saturation zone on the slope on the right side of the open cut tunnel, which reduces the shear strength of the slope soil; the excavation at the slope toe reduces the anti-sliding capacity of the slope toe. Under the combined action of excavation and rainfall, when the soil above the top of the anchor pile is excavated, two potential sliding surfaces are bounded by the top of the excavation area, and the shear outlet is located at the top of the anchor pile. After the excavation of the open cut tunnel, the potential sliding surface is mainly concentrated at the lower part of the downhill area, and the shear outlet moves down to the bottom of the open cut tunnel. Based on the deformation characteristics and the failure mechanism of the landslides, comprehensive control measures, including interim emergency mitigation measures and long-term mitigation measures, are proposed. The field monitoring results further verify the accuracy of the anti-sliding mechanism analysis and the effectiveness of anti-sliding measures.
引用
收藏
页码:111 / 123
页数:13
相关论文
共 50 条
  • [1] Influence analysis on creeping mechanism for the portal section slope of high-speed railway
    Zheng M.
    Hu G.
    Zhong L.
    2018, Huazhong University of Science and Technology (46): : 17 - 21
  • [2] Study on failure mechanism and treatment measures of floor heave of high-speed railway tunnel in the interbedded surrounding rock with high geostress
    Feng, Jiaqi
    Gong, Lun
    Wang, Lichuan
    Zhou, Ping
    Zhang, Peng
    Li, Yang
    Liu, Zhiqiang
    ENGINEERING FAILURE ANALYSIS, 2023, 150
  • [3] Analysis On Vibrations Due To High-speed Railway Tunnel And Control Measures
    Quan Xiaojuan
    Shi Kai
    Yan Yibo
    VIBRATION, STRUCTURAL ENGINEERING AND MEASUREMENT II, PTS 1-3, 2012, 226-228 : 381 - 386
  • [5] Instability Mechanism of Surrounding Rock for Super-Large Cross Section at High-speed Railway Tunnel Portal
    Wu Shuanglan
    Yang Shihao
    Zhang Xuewen
    ADVANCES IN CIVIL AND INDUSTRIAL ENGINEERING, PTS 1-4, 2013, 353-356 : 1597 - 1603
  • [6] RESEARCH ON ONLINE MONITORING TECHNOLOGY FOR ROCK MASS CONDITION OF HIGH-SPEED RAILWAY TUNNEL PORTAL SLOPE IN SEASONAL FREEZING AREA
    Bian, Wenrui
    Wang, Zhongchang
    Ma, Yundong
    Pang, Yanzhi
    Journal of GeoEngineering, 2024, 19 (04): : 131 - 140
  • [7] Research on the Karst Detection and Collapse Treatment Scheme of High Speed Railway Tunnel
    Kou, Bangning
    Journal of Railway Engineering Society, 2021, 38 (02) : 80 - 84
  • [8] Action mechanism of geogrid reinforced expansive soil slope in high-speed railway
    Zhang R.
    Zhou Y.
    Lan T.
    Zheng J.
    Liu Z.
    Li B.
    Journal of Railway Science and Engineering, 2024, 21 (01): : 1 - 12
  • [9] Ground Vibration on High-Speed Railway Tunnel
    Watanabe, T.
    Sogabe, M.
    Yokoyama, H.
    Yonezawa, T.
    Kiyota, S.
    NOISE AND VIBRATION MITIGATION FOR RAIL TRANSPORTATION SYSTEMS, 2012, 118 : 299 - +
  • [10] THE COMPARATIVE STUDY OF PORTAL-FRAME PIER FOR HIGH-SPEED RAILWAY
    Hu, Nan
    Dai, Gonglian
    INTERNATIONAL SYMPOSIUM ON LIFE-CYCLE PERFORMANCE OF BRIDGES AND STRUCTURES, 2010, : 607 - 614