Home | About Journal  | Editorial Board  | Instruction | Subscription | Advertisement | Message Board  | Contact Us | 中文
MODERN TUNNELLING TECHNOLOGY 2022, Vol. 59 Issue (5) :246-    DOI:
Current Issue | Next Issue | Archive | Adv Search << [an error occurred while processing this directive] | [an error occurred while processing this directive] >>
Comparative Study on Reinforcement Schemes for Shield Tunnel Under-crossing Railway Bridge with Isolated Shallow Foundation in Water-rich Sand Stratum
(1. Jiangxi Local Railway Development Co., Ltd., Nanchang 330000; 2. School of Civil Engineering, Central South University, Changsha 410075; 3. The 2nd Engineering Co., Ltd. of China Railway Tunnel Group, Sanhe 065201)
Download: PDF (3392KB)   HTML (1KB)   Export: BibTeX or EndNote (RIS)      Supporting Info
Abstract In order to ensure the construction safety of shield tunnel undercrossing isolated shallow foundation rail? way bridge in water-rich sand stratum, taking Nanchang Metro Line 4 undercrossing Qingshan Road overpass of Bei?jing-Kowloon Railway as the engineering background, the reinforcement measures of stratum grouting and cast-inplace raft foundation frame culvert are put forward by means of construction method comparison, numerical analysis and field monitoring. The law of track settlement is analyzed, and the effectiveness of reinforcement measures is verified. The results show that it is reasonable and effective to use stratum grouting and cast-in-place raft foundation frame culvert to reinforce the railway bridge and realize the control of track settlement before shield tunnelling. Compared with the condition without any reinforcement measures, the maximum value of track settlement is reduced by 83.53%, which is 1.88 mm. The field monitoring results show that the maximum settlement of the track is 1.45 mm after stratum grouting and cast-in-place raft foundation frame culvert reinforcement, which verifies the correctness of the numerical analysis results and the effectiveness of the reinforcement measures, and ensures the normal operation of the Beijing-Kowloon Railway.
Service
Email this article
Add to my bookshelf
Add to citation manager
Email Alert
RSS
Articles by authors
OUYANG Hongzhi1 ZHU Dinggui2 AN Bin3 SHI Chenghua2
KeywordsShield tunnel   Water-rich sand sratum   Railway bridge   Reinforcement measures   Rail deformation     
Abstract: In order to ensure the construction safety of shield tunnel undercrossing isolated shallow foundation rail? way bridge in water-rich sand stratum, taking Nanchang Metro Line 4 undercrossing Qingshan Road overpass of Bei?jing-Kowloon Railway as the engineering background, the reinforcement measures of stratum grouting and cast-inplace raft foundation frame culvert are put forward by means of construction method comparison, numerical analysis and field monitoring. The law of track settlement is analyzed, and the effectiveness of reinforcement measures is verified. The results show that it is reasonable and effective to use stratum grouting and cast-in-place raft foundation frame culvert to reinforce the railway bridge and realize the control of track settlement before shield tunnelling. Compared with the condition without any reinforcement measures, the maximum value of track settlement is reduced by 83.53%, which is 1.88 mm. The field monitoring results show that the maximum settlement of the track is 1.45 mm after stratum grouting and cast-in-place raft foundation frame culvert reinforcement, which verifies the correctness of the numerical analysis results and the effectiveness of the reinforcement measures, and ensures the normal operation of the Beijing-Kowloon Railway.
KeywordsShield tunnel,   Water-rich sand sratum,   Railway bridge,   Reinforcement measures,   Rail deformation     
Cite this article:   
OUYANG Hongzhi1 ZHU Dinggui2 AN Bin3 SHI Chenghua2 .Comparative Study on Reinforcement Schemes for Shield Tunnel Under-crossing Railway Bridge with Isolated Shallow Foundation in Water-rich Sand Stratum[J]  MODERN TUNNELLING TECHNOLOGY, 2022,V59(5): 246-
URL:  
http://www.xdsdjs.com/EN/      或     http://www.xdsdjs.com/EN/Y2022/V59/I5/246
 
No references of article
[1] WANG Zijian1 LIU Teng2 JI Xiaodong1 LIU Xueyan1.Study on the Upper Limit of Stability of the Slope Excavation Face of a Shield Tunnel[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(6): 42-50
[2] CHEN Rendong1 LU Ping2 SUN Ye1 LIU Minggao1 PANG Kang1.Centrifuge Model Test of the Cross Passages in Super Large Diameter Shield Tunnels[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(6): 114-124
[3] ZHOU Shengli.Posture Destabilization and Treatment Measures of Large Diameter Shield in Soft Mudstone[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(6): 208-215
[4] LIU Bin1 ZHAO Dongping2, 3 LI Dong3.Study on Grouting Reinforcement Range of Shield Tunnel Undercrossing Expressway in Composite Stratum[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(6): 187-196
[5] GUAN Linxing1 WEN Zhuyin1 WANG Xiaopeng2 YOU Guangming1 SUN Wei1 ZHUANG Qianwei3.Test and Study on the Application of Synthetic Macro-fibers in the Segements of Drainage and Storage Tunnels Built by Shield Method[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(6): 258-265
[6] HUANG Zhongkai1 ZHANG Dongmei1 ZHOU Wending1 CHENG Yixin1 TONG Yue2.The Cross-section Deformation Prediction Method for Shield Tunnel Using Bayesian Network[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(5): 10-17
[7] YANG Zhenhua.Distribution Law of Longitudinal Stress of the Shallow-covered Receiving Shield Tunnel[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(5): 18-26
[8] ZHAO Sensen ZHANG Dongmei HUANG Zhongkai.Mechanical Characteristics of Distributed Mortise-and-Tenon of Largediameter Shield Tunnels[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(5): 54-62
[9] LI Chunlin1 ZHANG Xiwen2,3 LIU Guangsen2,3 LIU Junyan2,3 LIU Yan2,3 SUN Wenhao4 ZHANG Liangliang4.Research on Mechanical and Deformation Characteristics of Large Diameter Shield Tunnels under Cyclic Loadings[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(5): 47-53
[10] CUI Qinglong1 LI Jin1 GAO Binyong2 XIONG Xinyue2.Mechanical Properties of Three-inclined Bolts in Longitudinal Joint of Large-diameter Shield Tunnel Segment[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(5): 63-71
[11] LI Xiangyu1,2 LI Xinyuan3 LI Mingyu4 YANG Xiao5 HUANG Pei6.Study on the Influence of Different Degrees of Leakage on Long-term Settlement of Shield Tunnels[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(5): 72-79
[12] MO Weiliang1 YANG Yubing1 LIN Yuexiang2,3 LU Mingjian1.Measurement and Calculation Method for Shield Tunnel Segment Dislocation Deformation Based on OFDR Technology[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(5): 179-187
[13] ZHANG Tingrui.Research on Thermal Properties and Mechanical Behaviors of Large Shield Tunnel in Fire[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(5): 202-211
[14] XIAO Mingqing1, 2 XUE Guangqiao1, 2 ZHAO Mingying1, 2.Experimental Research on Mechanical Performance of Longitudinal Joint of Shield Tunnels with Quick Connectors[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(5): 154-162
[15] HE Chuangbo1,2,3 XU Chao 1,2,3 YANG Zhao1,2,3 LIU Pengfei 1,2,3 ZHENG Jiajia4 GAO Ruchao1,2,3.Research on the Waterproof Performance of Segment Rubber Gasket Considering the Groove Boundary and Paste Quality[J]. MODERN TUNNELLING TECHNOLOGY, 2022,59(5): 195-201
Copyright 2010 by MODERN TUNNELLING TECHNOLOGY