Elasto-plasticity and pore-pressure coupled analysis on the pullout behaviors of a plate anchor

A numerical method is proposed for the elasto-plasticity and pore-pressure coupled analysis on the pullout behaviors of a plate anchor. The bounding-surface plasticity (BSP) model combined with Biot’s consolidation theory is employed to simulate the cyclic loading induced elasto-plastic deformation...

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Main Authors: Cun Hu, Fu-Ping Gao
Format: Article
Language:English
Published: Elsevier 2015-03-01
Series:Theoretical and Applied Mechanics Letters
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2095034915000197
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spelling doaj-c4f8a63289ba49a0bd203728fc97a91f2020-11-24T22:04:07ZengElsevierTheoretical and Applied Mechanics Letters2095-03492015-03-0152899210.1016/j.taml.2015.02.004Elasto-plasticity and pore-pressure coupled analysis on the pullout behaviors of a plate anchorCun HuFu-Ping GaoA numerical method is proposed for the elasto-plasticity and pore-pressure coupled analysis on the pullout behaviors of a plate anchor. The bounding-surface plasticity (BSP) model combined with Biot’s consolidation theory is employed to simulate the cyclic loading induced elasto-plastic deformation of the soil skeleton and the accompanying generation/dissipation of the excess pore water pressure. The suction force generated around the anchor due to the cyclic variation of the pore water pressure has much effect on the pullout capacity of the plate anchor. The calculated pullout capacity with the proposed method (i.e., the coupled analysis) gets lower than that with the conventional total stress analysis for the case of long-term sustained loading, but slightly higher for the case of short-term monotonic loading. The cyclic loading induced accumulation of pore water pressure may result in an obvious decrease of the stiffness of the soil-plate anchor system.http://www.sciencedirect.com/science/article/pii/S2095034915000197Plate anchorBounding-surface plasticity modelPore pressureCoupled analysis
collection DOAJ
language English
format Article
sources DOAJ
author Cun Hu
Fu-Ping Gao
spellingShingle Cun Hu
Fu-Ping Gao
Elasto-plasticity and pore-pressure coupled analysis on the pullout behaviors of a plate anchor
Theoretical and Applied Mechanics Letters
Plate anchor
Bounding-surface plasticity model
Pore pressure
Coupled analysis
author_facet Cun Hu
Fu-Ping Gao
author_sort Cun Hu
title Elasto-plasticity and pore-pressure coupled analysis on the pullout behaviors of a plate anchor
title_short Elasto-plasticity and pore-pressure coupled analysis on the pullout behaviors of a plate anchor
title_full Elasto-plasticity and pore-pressure coupled analysis on the pullout behaviors of a plate anchor
title_fullStr Elasto-plasticity and pore-pressure coupled analysis on the pullout behaviors of a plate anchor
title_full_unstemmed Elasto-plasticity and pore-pressure coupled analysis on the pullout behaviors of a plate anchor
title_sort elasto-plasticity and pore-pressure coupled analysis on the pullout behaviors of a plate anchor
publisher Elsevier
series Theoretical and Applied Mechanics Letters
issn 2095-0349
publishDate 2015-03-01
description A numerical method is proposed for the elasto-plasticity and pore-pressure coupled analysis on the pullout behaviors of a plate anchor. The bounding-surface plasticity (BSP) model combined with Biot’s consolidation theory is employed to simulate the cyclic loading induced elasto-plastic deformation of the soil skeleton and the accompanying generation/dissipation of the excess pore water pressure. The suction force generated around the anchor due to the cyclic variation of the pore water pressure has much effect on the pullout capacity of the plate anchor. The calculated pullout capacity with the proposed method (i.e., the coupled analysis) gets lower than that with the conventional total stress analysis for the case of long-term sustained loading, but slightly higher for the case of short-term monotonic loading. The cyclic loading induced accumulation of pore water pressure may result in an obvious decrease of the stiffness of the soil-plate anchor system.
topic Plate anchor
Bounding-surface plasticity model
Pore pressure
Coupled analysis
url http://www.sciencedirect.com/science/article/pii/S2095034915000197
work_keys_str_mv AT cunhu elastoplasticityandporepressurecoupledanalysisonthepulloutbehaviorsofaplateanchor
AT fupinggao elastoplasticityandporepressurecoupledanalysisonthepulloutbehaviorsofaplateanchor
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