3D Numerical Analysis of Piled Raft Foundation on Soft Soil Improved by Stone Columns

This study investigated the behavior of piled raft foundations in soft soil improved by stone columns of different lengths and diameters. Three-dimensional (3D) finite element analyses were conducted to evaluate the effects of area replacement ratio and slenderness ratio on settlement behavior under...

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Published in:TRANSPORTATION INFRASTRUCTURE GEOTECHNOLOGY
Main Authors: Jais, Ismacahyadi Bagus Mohamed; Rahman, Sharifah Nur Syafiqah Syed Abdul; Lat, Diana Che
Format: Article
Language:English
Published: SPRINGERNATURE 2025
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001406418700002
author Jais
Ismacahyadi Bagus Mohamed; Rahman
Sharifah Nur Syafiqah Syed Abdul; Lat
Diana Che
spellingShingle Jais
Ismacahyadi Bagus Mohamed; Rahman
Sharifah Nur Syafiqah Syed Abdul; Lat
Diana Che
3D Numerical Analysis of Piled Raft Foundation on Soft Soil Improved by Stone Columns
Engineering
author_facet Jais
Ismacahyadi Bagus Mohamed; Rahman
Sharifah Nur Syafiqah Syed Abdul; Lat
Diana Che
author_sort Jais
spelling Jais, Ismacahyadi Bagus Mohamed; Rahman, Sharifah Nur Syafiqah Syed Abdul; Lat, Diana Che
3D Numerical Analysis of Piled Raft Foundation on Soft Soil Improved by Stone Columns
TRANSPORTATION INFRASTRUCTURE GEOTECHNOLOGY
English
Article
This study investigated the behavior of piled raft foundations in soft soil improved by stone columns of different lengths and diameters. Three-dimensional (3D) finite element analyses were conducted to evaluate the effects of area replacement ratio and slenderness ratio on settlement behavior under uniformly distributed vertical loads. In terms of settlement reduction, adding stone columns effectively reduced the total settlement of the piled raft system by 20.1 to 26.9%, thereby improving the raft-bearing capacity. Regarding foundation system behavior, the raft experienced maximum settlement at the middle of the raft, while piles at the side of the raft deformed laterally at the top of the pile, and the piles at the center of the raft settled vertically. Stone columns were observed to experience three modes of deformation: (1) lateral bulging; (2) short column penetrates clay and long column absorbs deformation along its length; and (3) slender column acts as laterally loaded pile. In terms of proposing optimization, settlement can be reduced by using a stone column of lower area replacement ratio (ARR) with a higher slenderness ratio (L/D).
SPRINGERNATURE
2196-7202
2196-7210
2025
12
1
10.1007/s40515-025-00539-2
Engineering

WOS:001406418700002
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001406418700002
title 3D Numerical Analysis of Piled Raft Foundation on Soft Soil Improved by Stone Columns
title_short 3D Numerical Analysis of Piled Raft Foundation on Soft Soil Improved by Stone Columns
title_full 3D Numerical Analysis of Piled Raft Foundation on Soft Soil Improved by Stone Columns
title_fullStr 3D Numerical Analysis of Piled Raft Foundation on Soft Soil Improved by Stone Columns
title_full_unstemmed 3D Numerical Analysis of Piled Raft Foundation on Soft Soil Improved by Stone Columns
title_sort 3D Numerical Analysis of Piled Raft Foundation on Soft Soil Improved by Stone Columns
container_title TRANSPORTATION INFRASTRUCTURE GEOTECHNOLOGY
language English
format Article
description This study investigated the behavior of piled raft foundations in soft soil improved by stone columns of different lengths and diameters. Three-dimensional (3D) finite element analyses were conducted to evaluate the effects of area replacement ratio and slenderness ratio on settlement behavior under uniformly distributed vertical loads. In terms of settlement reduction, adding stone columns effectively reduced the total settlement of the piled raft system by 20.1 to 26.9%, thereby improving the raft-bearing capacity. Regarding foundation system behavior, the raft experienced maximum settlement at the middle of the raft, while piles at the side of the raft deformed laterally at the top of the pile, and the piles at the center of the raft settled vertically. Stone columns were observed to experience three modes of deformation: (1) lateral bulging; (2) short column penetrates clay and long column absorbs deformation along its length; and (3) slender column acts as laterally loaded pile. In terms of proposing optimization, settlement can be reduced by using a stone column of lower area replacement ratio (ARR) with a higher slenderness ratio (L/D).
publisher SPRINGERNATURE
issn 2196-7202
2196-7210
publishDate 2025
container_volume 12
container_issue 1
doi_str_mv 10.1007/s40515-025-00539-2
topic Engineering
topic_facet Engineering
accesstype
id WOS:001406418700002
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001406418700002
record_format wos
collection Web of Science (WoS)
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