Numerical Study of the Seismic Response of Closed-Ended Pipe Pile in Cohesionless Soils

Closed-ended pipe piles are usually preferred over traditional piles because they are simpler and easier to handle. Also, their quality could be verified easily and at a low cost. However, the seismic response of these piles is still not clearly understood. Therefore, this paper examines the seismic...

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Published in:Transportation Infrastructure Geotechnology
Main Author: Al-Jeznawi D.; Jais I.B.M.; Albusoda B.S.; Alzabeebee S.; Keawsawasvong S.; Khalid N.
Format: Article
Language:English
Published: Springer 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85145825191&doi=10.1007%2fs40515-022-00273-z&partnerID=40&md5=b365ecfecaf9ef20fda1329c8bd489d4
id 2-s2.0-85145825191
spelling 2-s2.0-85145825191
Al-Jeznawi D.; Jais I.B.M.; Albusoda B.S.; Alzabeebee S.; Keawsawasvong S.; Khalid N.
Numerical Study of the Seismic Response of Closed-Ended Pipe Pile in Cohesionless Soils
2024
Transportation Infrastructure Geotechnology
11
1
10.1007/s40515-022-00273-z
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85145825191&doi=10.1007%2fs40515-022-00273-z&partnerID=40&md5=b365ecfecaf9ef20fda1329c8bd489d4
Closed-ended pipe piles are usually preferred over traditional piles because they are simpler and easier to handle. Also, their quality could be verified easily and at a low cost. However, the seismic response of these piles is still not clearly understood. Therefore, this paper examines the seismic performance of closed-ended pipe piles embedded in dry and saturated cohesionless soils using a validated three-dimensional finite element model. The effect of the pile material, slenderness ratio, peak ground acceleration (PGA), and soil state (i.e., dry or saturated) are considered. Four earthquake records have been used in the stress-nonlinear time history coupled analysis. It is found that the pore water pressure ratio rises as the PGA or the pile slenderness ratio increases. In addition, the lateral displacement is found to increase nonlinearly with the increase of the PGA for both dry and saturated conditions. This lateral displacement also increases as the slenderness ratio rises. A similar trend of that noticed for the lateral displacement is also noticed for the bending moment. However, the trend of the relationship between the shaft resistance and the PGA is found to depend on the soil state and soil density. Importantly, design charts have been proposed based on the results of the present study to make the results useful in the future to designers and researchers. © 2023, The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.
Springer
21967202
English
Article

author Al-Jeznawi D.; Jais I.B.M.; Albusoda B.S.; Alzabeebee S.; Keawsawasvong S.; Khalid N.
spellingShingle Al-Jeznawi D.; Jais I.B.M.; Albusoda B.S.; Alzabeebee S.; Keawsawasvong S.; Khalid N.
Numerical Study of the Seismic Response of Closed-Ended Pipe Pile in Cohesionless Soils
author_facet Al-Jeznawi D.; Jais I.B.M.; Albusoda B.S.; Alzabeebee S.; Keawsawasvong S.; Khalid N.
author_sort Al-Jeznawi D.; Jais I.B.M.; Albusoda B.S.; Alzabeebee S.; Keawsawasvong S.; Khalid N.
title Numerical Study of the Seismic Response of Closed-Ended Pipe Pile in Cohesionless Soils
title_short Numerical Study of the Seismic Response of Closed-Ended Pipe Pile in Cohesionless Soils
title_full Numerical Study of the Seismic Response of Closed-Ended Pipe Pile in Cohesionless Soils
title_fullStr Numerical Study of the Seismic Response of Closed-Ended Pipe Pile in Cohesionless Soils
title_full_unstemmed Numerical Study of the Seismic Response of Closed-Ended Pipe Pile in Cohesionless Soils
title_sort Numerical Study of the Seismic Response of Closed-Ended Pipe Pile in Cohesionless Soils
publishDate 2024
container_title Transportation Infrastructure Geotechnology
container_volume 11
container_issue 1
doi_str_mv 10.1007/s40515-022-00273-z
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85145825191&doi=10.1007%2fs40515-022-00273-z&partnerID=40&md5=b365ecfecaf9ef20fda1329c8bd489d4
description Closed-ended pipe piles are usually preferred over traditional piles because they are simpler and easier to handle. Also, their quality could be verified easily and at a low cost. However, the seismic response of these piles is still not clearly understood. Therefore, this paper examines the seismic performance of closed-ended pipe piles embedded in dry and saturated cohesionless soils using a validated three-dimensional finite element model. The effect of the pile material, slenderness ratio, peak ground acceleration (PGA), and soil state (i.e., dry or saturated) are considered. Four earthquake records have been used in the stress-nonlinear time history coupled analysis. It is found that the pore water pressure ratio rises as the PGA or the pile slenderness ratio increases. In addition, the lateral displacement is found to increase nonlinearly with the increase of the PGA for both dry and saturated conditions. This lateral displacement also increases as the slenderness ratio rises. A similar trend of that noticed for the lateral displacement is also noticed for the bending moment. However, the trend of the relationship between the shaft resistance and the PGA is found to depend on the soil state and soil density. Importantly, design charts have been proposed based on the results of the present study to make the results useful in the future to designers and researchers. © 2023, The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.
publisher Springer
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language English
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