Exploring the feasibility of prestressed anchor cables as an alternative to temporary support in the excavation of super-large-span tunnel
Shunhua Zhou, Yuyin Jin, Zhiyao Tian, Chunhua Zou, Heming Zhao, Zengrun Miao
Exploring the feasibility of prestressed anchor cables as an alternative to temporary support in the excavation of super-large-span tunnel
Excavating super-large-span tunnels in soft rock masses presents significant challenges. To ensure safety, the sequential excavation method is commonly adopted. It utilizes internal temporary supports to spatially partition the tunnel face and divide the excavation into multiple stages. However, these internal supports generally impose spatial constraints, limiting the use of large-scale excavation equipment and reducing construction efficiency. To address this constraint, this study adopts the “Shed-frame” principle to explore the feasibility of an innovative support system, which aims to replace internal supports with prestressed anchor cables and thus provide a more spacious working space with fewer internal obstructions. To evaluate its effectiveness, a field case involving the excavation of a 24-m span tunnel in soft rock is presented, and an analysis of extensive field data is conducted to study the deformation characteristics of the surrounding rock and the mechanical behavior of the support system. The results revealed that prestressed anchor cables integrated the initial support with the shed, creating an effective “shed-frame” system, which successively maintained tunnel deformation and frame stress levels within safe regulatory bounds. Moreover, the prestressed anchor cables bolstered the surrounding rock effectively and reduced the excavation-induced disturbance zone significantly. In summary, the proposed support system balances construction efficiency and safety. These field experiences may offer valuable insights into the popularization and further development of prestressed anchor cable support systems.
Super-large-span tunnel / Construction safety / Sequential excavation method / Shed-frame principle / Prestressed anchor cables
[1.] |
|
[2.] |
|
[3.] |
|
[4.] |
|
[5.] |
|
[6.] |
|
[7.] |
Professional Standards Compilation Group of People’s Republic of China. . Code for Design of Railway Tunnel (TB 10003–2016), 2016 Beijing China Railway Publishing House
|
[8.] |
|
[9.] |
|
[10.] |
|
[11.] |
|
[12.] |
|
[13.] |
|
[14.] |
|
[15.] |
|
[16.] |
|
[17.] |
|
[18.] |
|
[19.] |
|
[20.] |
|
[21.] |
|
[22.] |
|
[23.] |
|
[24.] |
|
[25.] |
|
[26.] |
|
[27.] |
|
[28.] |
|
[29.] |
|
[30.] |
|
[31.] |
|
[32.] |
|
[33.] |
|
[34.] |
|
[35.] |
|
[36.] |
Zhou S (2005) Principles of pipe roof applied to shallow-buried tunnels in soft ground. Chin J Rock Mech Eng 24(14):2565–2570 (in Chinese)
|
[37.] |
|
[38.] |
|
[39.] |
|
[40.] |
Professional Standards Compilation Group of People’s Republic of China. . Code for Rockbolt Support Technical of Railway Tunnel (Q/CR 9248–2020), 2021 Beijing China Railway Publishing House Co. Ltd
|
[41.] |
|
[42.] |
|
[43.] |
Qing WC, Gao Y, Zhu Y et al (2018) Construction methods for ultra large-span four-track deep tunnel on Wumengshan No.2 exit section. Tunn Constr 38(1):91–102 (in Chinese)
|
[44.] |
Professional Standards Compilation Group of People’s Republic of China. . Code for Design of Road Tunnel (JTG D70–2004), 2004 Beijing China Communications Press
|
[45.] |
|
/
〈 | 〉 |