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Frontiers of Structural and Civil Engineering

ISSN 2095-2430

ISSN 2095-2449(Online)

CN 10-1023/X

邮发代号 80-968

2019 Impact Factor: 1.68

Frontiers of Structural and Civil Engineering  2021, Vol. 15 Issue (1): 136-146   https://doi.org/10.1007/s11709-020-0710-8
  本期目录
Stability analysis and optimization of excavation method of double-arch tunnel with an extra-large span based on numerical investigation
Yiguo XUE(), Huimin GONG, Fanmeng KONG, Weimin YANG, Daohong QIU, Binghua ZHOU
Geotechnical and Structural Engineering Research Center, Shandong University, Jinan 250061, China
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Abstract

The Xiamen Haicang double-arch tunnel has a maximum span of 45.73 m and a minimum burial depth of 5.8 m. A larger deformation or collapse of the tunnel is readily encountered during tunnel excavation. It is therefore necessary to select a construction approach that is suitable for double-arch tunnel projects with an extra-large span. In this study, three construction methods for double-arch tunnels with extra-large spans were numerically simulated. Subsequently, the deformation behavior and stress characteristics of the surrounding rock were obtained and compared. The results showed that the double-side-drift method with temporary vertical support achieves better adaptability in the construction of such tunnels, which can be observed from both the numerical results and in situ monitoring data. In addition, the improved temporary support plays a critical role in controlling the surrounding rock deformation. In addition, the disturbance resulting from the excavation of adjacent drifts was obvious, particularly the disturbance of the surrounding rock caused by the excavation of the middle drift. The present findings can serve as the initial guidelines for the construction of ultra-shallowly buried double-arch tunnels with extra-large spans.

Key wordsdouble-arch tunnel    triple-layer composite liner system    numerical modeling    stress analysis    settlement
收稿日期: 2019-08-10      出版日期: 2021-04-12
Corresponding Author(s): Yiguo XUE   
 引用本文:   
. [J]. Frontiers of Structural and Civil Engineering, 2021, 15(1): 136-146.
Yiguo XUE, Huimin GONG, Fanmeng KONG, Weimin YANG, Daohong QIU, Binghua ZHOU. Stability analysis and optimization of excavation method of double-arch tunnel with an extra-large span based on numerical investigation. Front. Struct. Civ. Eng., 2021, 15(1): 136-146.
 链接本文:  
https://academic.hep.com.cn/fsce/CN/10.1007/s11709-020-0710-8
https://academic.hep.com.cn/fsce/CN/Y2021/V15/I1/136
tunnel name span (m) burial depth (m) excavation methods of main tunnels number of excavation sections references
Jinkou 22 45 CD 7 Shen et al. [18]
Zhongxi 25.19 38.52 bench method 5 Zhang et al. [16]
Mazhaiding 28.33 50 CD 9 Wang et al. [19]
Zhangshi 29.7 54 bench method 5 Ji et al. [20]
Guanyinshan 33.65 80 CD 12 Yang et al. [15]
Great Wall ridge 33.97 5 CRD 12 Li et al. [1]
Tab.1  
Fig.1  
material name unit weight
(kN/m3)
Poisson’s ratio Young’s modulus (MPa) cohesion
(kPa)
friction angle (°)
miscellaneous fill soil 18.4 0.3 8.5 27 23
moderately weathered granite 25 0.25 6000 50 55
slightly weathered granite 26.5 0.2 15000 100 70
Tab.2  
material name unit weight (kN/m3) Poisson’s ratio Young’s modulus (MPa)
temporary support 22 0.2 25000
primary support 23 0.2 28000
secondary support 22 0.2 25000
tertiary lining 27 0.2 35000
middle wall 27 0.2 35000
Tab.3  
Fig.2  
Fig.3  
Fig.4  
Fig.5  
Fig.6  
Fig.7  
Fig.8  
Fig.9  
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