Ground behaviour around a tunnel using various soil models

Finite Element (FE) analyses are used world widely in geotechnical engineering to obtain the soil displacement caused by tunnelling. The surface settlement induced by tunnelling predicted by FE is known to be wider and shallower than the field measurements particularly for stiff clays with high coef...

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Main Authors: Namazi, E., Mohamad, H., Hong, A. K. B., Hajihassani, M., Jusoh, S. N., Abad, S. V .A .N. K.
Format: Article
Language:English
Published: EJGE 2012
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Online Access:http://eprints.utm.my/id/eprint/47038/1/NamaziE2012_GroundBehaviourAroundaTunnelUsing.pdf
http://eprints.utm.my/id/eprint/47038/
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spelling my.utm.470382019-03-05T01:59:03Z http://eprints.utm.my/id/eprint/47038/ Ground behaviour around a tunnel using various soil models Namazi, E. Mohamad, H. Hong, A. K. B. Hajihassani, M. Jusoh, S. N. Abad, S. V .A .N. K. TA Engineering (General). Civil engineering (General) Finite Element (FE) analyses are used world widely in geotechnical engineering to obtain the soil displacement caused by tunnelling. The surface settlement induced by tunnelling predicted by FE is known to be wider and shallower than the field measurements particularly for stiff clays with high coefficient of earth pressure at rest, K 0. It has been recognized that neglecting the non-linearity, anisotropy and threedimensional effects of the soil model as well as K 0 condition can be the reasons of this discrepancy. Unfortunately, such numerical studies were only limited to the problem in the plane strain condition whereas tunnelling is obviously a three dimensional (3D) problem. This paper compares 3D FE modelling of tunnel constructions in stiff soil of London Clay using non-linear soil model with low and high K 0 regimes. It was found that modelling using isotropic non-linear soil with low value of K 0 gave the best matched-fit data on the observed greenfield surface settlement as opposed to the other soil models. In addition, the model is able to replicate the steady-state condition of ground movement after the completion of tunnel construction that is when the tunnel face has passed seven times of the tunnel diameter beyond the boundary point. This steady-state condition is not possible to simulate using other soil models. EJGE 2012 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/47038/1/NamaziE2012_GroundBehaviourAroundaTunnelUsing.pdf Namazi, E. and Mohamad, H. and Hong, A. K. B. and Hajihassani, M. and Jusoh, S. N. and Abad, S. V .A .N. K. (2012) Ground behaviour around a tunnel using various soil models. Electronic Journal of Geotechnical Engineering, 17 E . pp. 609-622. ISSN 1089-3032 www.ejge.com/2012/Ppr12.056alr.pdf
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
topic TA Engineering (General). Civil engineering (General)
spellingShingle TA Engineering (General). Civil engineering (General)
Namazi, E.
Mohamad, H.
Hong, A. K. B.
Hajihassani, M.
Jusoh, S. N.
Abad, S. V .A .N. K.
Ground behaviour around a tunnel using various soil models
description Finite Element (FE) analyses are used world widely in geotechnical engineering to obtain the soil displacement caused by tunnelling. The surface settlement induced by tunnelling predicted by FE is known to be wider and shallower than the field measurements particularly for stiff clays with high coefficient of earth pressure at rest, K 0. It has been recognized that neglecting the non-linearity, anisotropy and threedimensional effects of the soil model as well as K 0 condition can be the reasons of this discrepancy. Unfortunately, such numerical studies were only limited to the problem in the plane strain condition whereas tunnelling is obviously a three dimensional (3D) problem. This paper compares 3D FE modelling of tunnel constructions in stiff soil of London Clay using non-linear soil model with low and high K 0 regimes. It was found that modelling using isotropic non-linear soil with low value of K 0 gave the best matched-fit data on the observed greenfield surface settlement as opposed to the other soil models. In addition, the model is able to replicate the steady-state condition of ground movement after the completion of tunnel construction that is when the tunnel face has passed seven times of the tunnel diameter beyond the boundary point. This steady-state condition is not possible to simulate using other soil models.
format Article
author Namazi, E.
Mohamad, H.
Hong, A. K. B.
Hajihassani, M.
Jusoh, S. N.
Abad, S. V .A .N. K.
author_facet Namazi, E.
Mohamad, H.
Hong, A. K. B.
Hajihassani, M.
Jusoh, S. N.
Abad, S. V .A .N. K.
author_sort Namazi, E.
title Ground behaviour around a tunnel using various soil models
title_short Ground behaviour around a tunnel using various soil models
title_full Ground behaviour around a tunnel using various soil models
title_fullStr Ground behaviour around a tunnel using various soil models
title_full_unstemmed Ground behaviour around a tunnel using various soil models
title_sort ground behaviour around a tunnel using various soil models
publisher EJGE
publishDate 2012
url http://eprints.utm.my/id/eprint/47038/1/NamaziE2012_GroundBehaviourAroundaTunnelUsing.pdf
http://eprints.utm.my/id/eprint/47038/
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score 13.211869