Failure tests and bearing performance of prototype segmental linings of shield tunnel under high water pressure

被引:69
作者
Zhang, Li [1 ]
Feng, Kun [1 ,2 ]
Gou, Chao [1 ]
He, Chuan [1 ]
Liang, Kun [1 ]
Zhang, Haihua [3 ]
机构
[1] Southwest Jiaotong Univ, Minist Educ, Key Lab Transportat Tunnel Engn, Chengdu 610031, Sichuan, Peoples R China
[2] Southwest Jiaotong Univ, China Japan RSC Struct Res Ctr, Chengdu 610031, Sichuan, Peoples R China
[3] Kumagai Gumi Co Lod, Tech Res & Dev Inst, Ibaraki 3002651, Japan
基金
中国国家自然科学基金;
关键词
Underwater shield tunnel; High water pressure; Segmental lining structure; Prototype test; Failure characteristics; Structural bearing capacity evaluation; MECHANICAL-BEHAVIOR;
D O I
10.1016/j.tust.2019.103053
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The occurrence and characteristics of structural failure under high water pressure and the evaluation of structural bearing capacity are of great significance in the rational design of shield tunnels. In this study, the failure process of two types of segmental lining structures used in the Shiziyang Tunnel in China, namely, the straight joint assembly structure (STRS) and staggered joint assembly structure (STGS), are investigated and summarized with prototype tests. The differences in the failure characteristics between the two types of lining structures are observed and analyzed, and two indexes are proposed to evaluate the damage status of the entire structure and local structure by analyzing and interpreting the failure phenomena during the tests. The results show that (1) The failure processes of both STRS and STGS under high water pressure perform as: the accumulation of previous occurred strength damage of segments ultimately leads to the displacement instability failure of structure. However, the difference is that besides the occurrence of large number longitudinal penetrating cracks at segments, there are local crushing and shear cracks occurred at the joints in STRS. (2) The failure processes of STRS and STGS under high water pressure can be divided into three stages: normal deformation stage, strength damage stage, and displacement instability stage. (3) With the proposed two indexes, the failure phenomena and structural bearing capacities at various stages of the failure process can be theoretically analyzed and quantitatively evaluated. The effective stiffness coefficient beta(e) (specifically, beta(te) for STRS and beta(ce) for STGS) is recommended to assess the structural bearing status, and the residual bearing capacity coefficient R-bc is suggested to evaluate the residual structural bearing capacity. (4) For STRS, when obvious cracks appear, beta(te) is 0.83 and R-bc is 0.71; when significant deformation occurs, beta(te) is 0.65 and R-bc is 0.52; and when the structure fails, beta(te) is 0.4 and R-bc is 0.35. For STGS, when microcracks appear, beta(ce) is 0.67 and R-bc is 0.58; when the structure is significantly deformed, beta(ce) is 0.49 and R-bc is 0.43; and when the structure fails, beta(ce) is 0.18 and R-bc is 0.27. (5) In the loading process, beta(e) and R-bc of STRS and STGS decrease constantly. For STRS, the two indexes rapidly decline after visible cracks appear, but for STGS, the decreasing amplitude is relatively small.
引用
收藏
页数:15
相关论文
共 23 条
[1]   Ultimate capacity of a segmental grey cast iron tunnel lining ring subjected to large deformations [J].
Afshan, S. ;
Yu, J. B. Y. ;
Standing, J. R. ;
Vollum, R. L. ;
Potts, D. M. .
TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2017, 64 :74-84
[2]  
Bi X., 2014, CHINA CIVIL ENG J, V10, P117
[3]  
Blom C., 2002, Design philosophy of concrete linings for tunnels in soft soils
[4]   Centrifugal model tests on face failure of earth pressure balance shield induced by steady state seepage in saturated sandy silt ground [J].
Chen, Renpeng ;
Yin, Xinsheng ;
Tang, Lvjun ;
Chen, Yunmin .
TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2018, 81 :315-325
[5]  
Chen X. W., 2014, STRUCTURAL NONLINEAR, P238
[6]  
[董新平 Dong Xinping], 2014, [岩土工程学报, Chinese Journal of Geotechnical Engineering], V36, P417
[7]   A new analysis method for structural failure evaluation [J].
Estevao, Joao M. C. ;
Oliveira, Carlos Sousa .
ENGINEERING FAILURE ANALYSIS, 2015, 56 :573-584
[8]   Study on the Mechanical Behavior of Lining Structure for Underwater Shield Tunnel of High-Speed Railway [J].
Feng, Kun ;
He, Chuan ;
Fang, Yong ;
Jiang, Yingchao .
ADVANCES IN STRUCTURAL ENGINEERING, 2013, 16 (08) :1381-1399
[9]   Effect of TBM Advance in the Structural Response of Segmental Tunnel Lining [J].
Galvan, Arturo ;
Pena, Fernando ;
Moreno-Martinez, Jatziri Y. .
INTERNATIONAL JOURNAL OF GEOMECHANICS, 2017, 17 (09)
[10]  
Guo Z.J., 2004, STRUCT ENG, V20, P64