Abstract
AbstractThe double sidewall guide pit and centre cross diagram (CRD) methods are often used for the construction of large-section tunnels through water-rich fault fracture zones due to their long construction time and high construction cost. To shorten the construction period and save costs, the top heading and benching method (HB) and centre diaphragm (CD) can be chosen for construction. The construction parameters of the step and CD methods are optimized to ensure the surrounding rock stability and tunnel safety. By relying on the Tongzi Tunnel, we simulate the excavation of different step heights in the construction of the top heading and benching method (HB) and CD methods through numerical simulation, the laws of tunnel vault settlement, and changes in the surrounding rock stress, initial support axial force, bending moment and safety factor. The study shows that as the height of the upper step increases, the settlement of the vault and the convergence of the periphery increase, the initial support safety factor decreases, and the plastic zone of the surrounding rock increases at 30 m from the target face. The step height for the top heading and benching method (HB) of construction is optimized as follows. The ratios of the upper, middle and lower step heights are 0.45H, 0.35H and 0.2H, respectively. The CD method construction step height is optimized to the left (right) upper and left (right) lower step height ratios of 0.5H and 0.5H, respectively.
Funder
Major Science and Technology Special Project of Guizhou Province (Qiankehe Major Special Project
Natural Science Foundation of Guizhou Province (Qiankehe Foundation
Research on Key Technology of Guiyang Urban Rail Transit Tunnel Underpass Existing Railway
Publisher
Springer Science and Business Media LLC
Reference30 articles.
1. Zheng, Y. et al. Tunnel failure mechanism and depth and shallow burial boundary criteria. J. Zhejiang Hum. Sci. (Eng. Ed.) 44(10), 1851–1856 (2010).
2. Li, P., Zhao, Y. & Zhou, X. Displacement characteristics of highspeed railway tunnel construction in loess ground by using multistep excavation method. Tunn. Undergr. Space Technol. 51, 41–55 (2016).
3. Xu, G. et al. Study on large deformation failure mechanism and excavation method of soft rock tunnel under complex geological conditions. Mod. Tunn. Technol. 54(5), 146–154 (2017).
4. Zhu, B. & Dai, Y. Numerical simulation analysis of excavation technology on stability of tunnel surrounding rock. Highway 65(2), 316–319 (2020).
5. Xiang, H. et al. Numerical analysis of different construction methods for tunnels in weak surrounding rock. Highway 65(5), 334–340 (2020).
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