Nonlinear Dynamic Analysis Adopting Effective Stress Approach of an Embankment Involving Liquefaction Potential
Stability of an embankment under earthquake loads is challenging in the process of analysis and design. Some embankment design consist of saturated granular material that is potential to liquefaction. Earthquake loads to the embankment under this conditions is one of major cause of embankment failur...
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EDP Sciences
2020-01-01
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doaj-7c58218ac6d64d08874b0c30c864dd642021-08-26T09:26:53ZengEDP SciencesE3S Web of Conferences2267-12422020-01-011560201810.1051/e3sconf/202015602018e3sconf_iceedm2020_02018Nonlinear Dynamic Analysis Adopting Effective Stress Approach of an Embankment Involving Liquefaction PotentialSengara I Wayan0Sulaiman Ahmad1Professor, Faculty of Civil and Environment Engineering, Institut Teknologi BandungResearch Assistant, Faculty of Civil and Environment Engineering, Institut Teknologi Bandung,Stability of an embankment under earthquake loads is challenging in the process of analysis and design. Some embankment design consist of saturated granular material that is potential to liquefaction. Earthquake loads to the embankment under this conditions is one of major cause of embankment failure. Seismic performance involving stress-deformations and excess-pore-water pressure was evaluated in this paper. The evaluation adopts effective stress approach with non-linear elasto-plastic constitutive model. Numerical simulations through parametric studies were performed to estimate minimum density and embankment height efficiently to tolerate lateral displacements due to liquefaction. A number of parametric analyses were performed to investigate the relationships among relative densities of sand, ground accelerations, embankment height to excess-pore-pressure and lateral displacement of the embankment. The liquefaction analysis is conducted numerically using a finite difference method FLAC Dynamic 2D software adopting Finn-Byrne constitutive model.https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/16/e3sconf_iceedm2020_02018.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Sengara I Wayan Sulaiman Ahmad |
spellingShingle |
Sengara I Wayan Sulaiman Ahmad Nonlinear Dynamic Analysis Adopting Effective Stress Approach of an Embankment Involving Liquefaction Potential E3S Web of Conferences |
author_facet |
Sengara I Wayan Sulaiman Ahmad |
author_sort |
Sengara I Wayan |
title |
Nonlinear Dynamic Analysis Adopting Effective Stress Approach of an Embankment Involving Liquefaction Potential |
title_short |
Nonlinear Dynamic Analysis Adopting Effective Stress Approach of an Embankment Involving Liquefaction Potential |
title_full |
Nonlinear Dynamic Analysis Adopting Effective Stress Approach of an Embankment Involving Liquefaction Potential |
title_fullStr |
Nonlinear Dynamic Analysis Adopting Effective Stress Approach of an Embankment Involving Liquefaction Potential |
title_full_unstemmed |
Nonlinear Dynamic Analysis Adopting Effective Stress Approach of an Embankment Involving Liquefaction Potential |
title_sort |
nonlinear dynamic analysis adopting effective stress approach of an embankment involving liquefaction potential |
publisher |
EDP Sciences |
series |
E3S Web of Conferences |
issn |
2267-1242 |
publishDate |
2020-01-01 |
description |
Stability of an embankment under earthquake loads is challenging in the process of analysis and design. Some embankment design consist of saturated granular material that is potential to liquefaction. Earthquake loads to the embankment under this conditions is one of major cause of embankment failure. Seismic performance involving stress-deformations and excess-pore-water pressure was evaluated in this paper. The evaluation adopts effective stress approach with non-linear elasto-plastic constitutive model. Numerical simulations through parametric studies were performed to estimate minimum density and embankment height efficiently to tolerate lateral displacements due to liquefaction. A number of parametric analyses were performed to investigate the relationships among relative densities of sand, ground accelerations, embankment height to excess-pore-pressure and lateral displacement of the embankment. The liquefaction analysis is conducted numerically using a finite difference method FLAC Dynamic 2D software adopting Finn-Byrne constitutive model. |
url |
https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/16/e3sconf_iceedm2020_02018.pdf |
work_keys_str_mv |
AT sengaraiwayan nonlineardynamicanalysisadoptingeffectivestressapproachofanembankmentinvolvingliquefactionpotential AT sulaimanahmad nonlineardynamicanalysisadoptingeffectivestressapproachofanembankmentinvolvingliquefactionpotential |
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1721195909016977408 |