Home | About Journal  | Editorial Board  | Instruction | Subscription | Advertisement | Message Board  | Contact Us | 中文
MODERN TUNNELLING TECHNOLOGY 2019, Vol. 56 Issue (4) :81-88    DOI:
Current Issue | Next Issue | Archive | Adv Search << [an error occurred while processing this directive] | [an error occurred while processing this directive] >>
Analysis of Fluid-Solid Coupling Effect during Excavation of the Water-rich Large-section Loess Tunnel
(Lanzhou Jiaotong University, Lanzhou 730070)
Download: PDF (4167KB)   HTML (1KB)   Export: BibTeX or EndNote (RIS)      Supporting Info
Abstract The water content of loess layer of the tunnel body with a large section in the rear distribution area of Donggang station of Lanzhou rail transit line 1 is about 28.5% and the saturation is over 95%, which induces large settlement of primary support and long time to get stable for the surrounding rock. Based on the data of laboratory geotechnical test, a three-dimensional finite element model was established, the mechanical and deformation charac?teristics of primary support, ground surface settlement and pore water pressure distribution during construction by CRD method and double side drift method were compared and analyzed based on fluid-solid coupling and uncoupling effects. The results show that the ground surface settlement, vertical and horizontal displacements and their increase rates of primary support considering the effect of fluid-solid coupling are larger than that without considering the effect of fluid-solid coupling, there is no significant decrease in the later period and they are closer to the measured values at site, while there is no big change of mechanical behavior; it is more favorable to adopt the construction method of CRD with six excavation sections to control ground surface settlement and tunnel deformation based on fluid-solid coupling effect and the force applied on primary support are approximate under the two construction methods but the distribution forms is different; under the effect of fluid-solid coupling, the places with large hydraulic gradient of groundwater are mainly located at tunnel sidewall and invert, which is prone to leakage during construction, and compaction of shotcrete at crown and backfill grouting should be carried out to prevent the seepage field from shifting.
Service
Email this article
Add to my bookshelf
Add to citation manager
Email Alert
RSS
Articles by authors
LI Ming YAN Songhong PAN Chunyang ZHANG Xubin
KeywordsWater-rich loess   Large-section tunnel   Fluid-solid coupling   CRD method   Double side drift method   Numerical analysis     
Abstract: The water content of loess layer of the tunnel body with a large section in the rear distribution area of Donggang station of Lanzhou rail transit line 1 is about 28.5% and the saturation is over 95%, which induces large settlement of primary support and long time to get stable for the surrounding rock. Based on the data of laboratory geotechnical test, a three-dimensional finite element model was established, the mechanical and deformation charac?teristics of primary support, ground surface settlement and pore water pressure distribution during construction by CRD method and double side drift method were compared and analyzed based on fluid-solid coupling and uncoupling effects. The results show that the ground surface settlement, vertical and horizontal displacements and their increase rates of primary support considering the effect of fluid-solid coupling are larger than that without considering the effect of fluid-solid coupling, there is no significant decrease in the later period and they are closer to the measured values at site, while there is no big change of mechanical behavior; it is more favorable to adopt the construction method of CRD with six excavation sections to control ground surface settlement and tunnel deformation based on fluid-solid coupling effect and the force applied on primary support are approximate under the two construction methods but the distribution forms is different; under the effect of fluid-solid coupling, the places with large hydraulic gradient of groundwater are mainly located at tunnel sidewall and invert, which is prone to leakage during construction, and compaction of shotcrete at crown and backfill grouting should be carried out to prevent the seepage field from shifting.
KeywordsWater-rich loess,   Large-section tunnel,   Fluid-solid coupling,   CRD method,   Double side drift method,   Numerical analysis     
Cite this article:   
LI Ming YAN Songhong PAN Chunyang ZHANG Xubin .Analysis of Fluid-Solid Coupling Effect during Excavation of the Water-rich Large-section Loess Tunnel[J]  MODERN TUNNELLING TECHNOLOGY, 2019,V56(4): 81-88
URL:  
http://www.xdsdjs.com/EN/      或     http://www.xdsdjs.com/EN/Y2019/V56/I4/81
 
No references of article
[1] DENG Mingjiang1 TAN Zhongsheng2.Some Issues during TBM Trial Advance of Super-long Tunnel Group and Development Direction of Construction Technology[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 1-12
[2] SONG Yongjun CHE Yongxin REN Jianxi ZHANG Kun.Experimental Study on Creep Characteristics of Anchored Rocks[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 13-18
[3] YAN Gengsheng1,2 HE Xiaoliang1,2 HAN Jinming3 ZHAO Shuang3 ZHAO Cheng1,2.Analysis on the Survey Techniques of Shield Tunnels in Sandy Pebble Stratum[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 19-25
[4] ZHANG Heng ZHANG Gang SUN Jianchun ZHUYimo CHEN Shougen.Correlation Analysis of Q Value and Mechanical Parameters of Surrounding Rocks and Its Engineering Application[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 26-34
[5] LI Junda1,2 LI Yuanfu1,2 LI Shiqi1,3 LIU Kai1,3 WANG Guangkai1,2.A CBR-based Aided Decision Model for the Mountain Railway Tunnel Excavation Method[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 35-41
[6] WANG Qiuyi1 YANG Kui2 MAO Jinlong2 YANG Qingyuan3 ZHAO Boming3.Study on the Comprehensive Aseismic Measures for the Secondary Lining Structure of Highway Tunnels in Nine-degree Seismic Region[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 42-49
[7] ZHAO Licai1,2 YU Jianxing1.Design Optimization for the Rapid Excavation of Inclined Shaft of the Long Tunnel and Construction Period Estimation[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 50-57
[8] WANG Xu1 MENG Lu1 YANG Gang2 LU Song1.On Influencing Factors of the Tunnel Geological Prediction Results Obtained by Multi-source Seismic Interferometry[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 58-66
[9] TANG Bin XU Wenping.Discussion and Suggestions for Explosion-proof Based Modification of Construction Machinery and Vehicles in the Gas Tunnel[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 67-71
[10] CAI Yaning ZHANG Jinxun WU Fumei.Brief Introduction to Revision of the Segment Section of“Code for Construction and Acceptance of Shield Tunnelling Method”[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 72-76
[11] CHEN Xi1 ZHAO Yong2 YANG Yushun3.Effect of Rock Mechanical Parameters on Stability of Tunnel Surrounding Rocks[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 77-84
[12] LIU Siwei1 YANG Hongyun1,2 PAN Ruikai1.Research on Stratified Thickness Inversion of Roadway Composite Roof[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 85-91
[13] LI Fengyun.The Influential Factors on Instability of Slope during Excavation of a Metro Station Based on Upper Limit Analysis Method[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 92-97
[14] CUI Guangyao1 WANG Xuelai1 ZUO Kuixian1 WANG Mingnian2,3 JING Hongfei4.Study on Rigid and Flexible Compound Disaster Reduction Technology for the Tunnel with High Rock Temperature in Meizoseismal Area[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 98-103
[15] WANG Xing1 QIN Wei2 MA Jia3 WANG Lei1.Study on Local Structural Resistance of Ventilation System in Highway Tunnels[J]. MODERN TUNNELLING TECHNOLOGY, 2019,56(5): 104-113
Copyright 2010 by MODERN TUNNELLING TECHNOLOGY