Tunnel Behaviour Caused by Basement Excavation in Clay

Many researchers have investigated the effect of basement excavation on tunnel deformation. However, the influence of consolidation on the interaction of basement-tunnel-soil is rarely considered or systematically studied in clay. In this study, three-dimensional coupled-consolidation finite element...

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Main Authors: Huasheng Sun, Jihua Zhang, Guodong Zhao, Hao Wang
Format: Article
Language:English
Published: Hindawi-Wiley 2021-01-01
Series:Geofluids
Online Access:http://dx.doi.org/10.1155/2021/5570846
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spelling doaj-82af1808822f429ca1119937a5a1f5672021-04-12T01:24:16ZengHindawi-WileyGeofluids1468-81232021-01-01202110.1155/2021/5570846Tunnel Behaviour Caused by Basement Excavation in ClayHuasheng Sun0Jihua Zhang1Guodong Zhao2Hao Wang3Huaiyin Institute of TechnologyHuaiyin Institute of TechnologyHuaiyin Institute of TechnologyHuaiyin Institute of TechnologyMany researchers have investigated the effect of basement excavation on tunnel deformation. However, the influence of consolidation on the interaction of basement-tunnel-soil is rarely considered or systematically studied in clay. In this study, three-dimensional coupled-consolidation finite element analyses were conducted to investigate the effect of consolidation on the tunnel response to excavation. An advanced nonlinear constitutive model was adopted, and numerical parametric investigations were conducted to study the effect of the excavation depth, tunnel stiffness, soil permeability coefficient, and consolidation time on the tunnel response. The results revealed that the basement excavation led to stress release, which caused tunnel heave. Owing to the dissipation of excess negative pore water pressure, the tunnel heave further increased to become approximately twice as large compared with that observed when the foundation pit excavation had just been completed. As the consolidation time increased, the longitudinal tunnel heave and tunnel diameter change caused by the foundation pit excavation gradually increased, but the growth rate was slower down. When the consolidation time changed from 50 days to 150 days, the maximum tunnel heave at the crown and the maximum tunnel diameter change increased by 1.18 and 1.48 times, respectively. The soil’s permeability coefficient did not have a significant effect on the tunnel heave at the crown nor on the tunnel diameter change. The results obtained by this study are expected to be useful as an engineering reference for the analysis of soil structure problems in clay.http://dx.doi.org/10.1155/2021/5570846
collection DOAJ
language English
format Article
sources DOAJ
author Huasheng Sun
Jihua Zhang
Guodong Zhao
Hao Wang
spellingShingle Huasheng Sun
Jihua Zhang
Guodong Zhao
Hao Wang
Tunnel Behaviour Caused by Basement Excavation in Clay
Geofluids
author_facet Huasheng Sun
Jihua Zhang
Guodong Zhao
Hao Wang
author_sort Huasheng Sun
title Tunnel Behaviour Caused by Basement Excavation in Clay
title_short Tunnel Behaviour Caused by Basement Excavation in Clay
title_full Tunnel Behaviour Caused by Basement Excavation in Clay
title_fullStr Tunnel Behaviour Caused by Basement Excavation in Clay
title_full_unstemmed Tunnel Behaviour Caused by Basement Excavation in Clay
title_sort tunnel behaviour caused by basement excavation in clay
publisher Hindawi-Wiley
series Geofluids
issn 1468-8123
publishDate 2021-01-01
description Many researchers have investigated the effect of basement excavation on tunnel deformation. However, the influence of consolidation on the interaction of basement-tunnel-soil is rarely considered or systematically studied in clay. In this study, three-dimensional coupled-consolidation finite element analyses were conducted to investigate the effect of consolidation on the tunnel response to excavation. An advanced nonlinear constitutive model was adopted, and numerical parametric investigations were conducted to study the effect of the excavation depth, tunnel stiffness, soil permeability coefficient, and consolidation time on the tunnel response. The results revealed that the basement excavation led to stress release, which caused tunnel heave. Owing to the dissipation of excess negative pore water pressure, the tunnel heave further increased to become approximately twice as large compared with that observed when the foundation pit excavation had just been completed. As the consolidation time increased, the longitudinal tunnel heave and tunnel diameter change caused by the foundation pit excavation gradually increased, but the growth rate was slower down. When the consolidation time changed from 50 days to 150 days, the maximum tunnel heave at the crown and the maximum tunnel diameter change increased by 1.18 and 1.48 times, respectively. The soil’s permeability coefficient did not have a significant effect on the tunnel heave at the crown nor on the tunnel diameter change. The results obtained by this study are expected to be useful as an engineering reference for the analysis of soil structure problems in clay.
url http://dx.doi.org/10.1155/2021/5570846
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AT jihuazhang tunnelbehaviourcausedbybasementexcavationinclay
AT guodongzhao tunnelbehaviourcausedbybasementexcavationinclay
AT haowang tunnelbehaviourcausedbybasementexcavationinclay
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