Durability of Slag Based Geopolymer Stabilized Clay with High Moisture Condition

Clay soils, characterized by their cohesiveness and water retention capacity, exhibit low aeration and tend to swell when water is absorbed, leading to subsequent contraction. The moisture content significantly affects the properties of marine clay, resulting in low strength and high compressibility...

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Published in:International Journal of Integrated Engineering
Main Author: Ahmad M.M.; Zaki M.F.M.; Ghazaly Z.M.; Bawadi N.F.; Nujid M.M.; Muhamad K.; Hong T.H.H.
Format: Article
Language:English
Published: Penerbit UTHM 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85201858448&doi=10.30880%2fijie.2024.16.04.006&partnerID=40&md5=bd8fb2909a0ab1a1dbe4aa9e30fb9112
id 2-s2.0-85201858448
spelling 2-s2.0-85201858448
Ahmad M.M.; Zaki M.F.M.; Ghazaly Z.M.; Bawadi N.F.; Nujid M.M.; Muhamad K.; Hong T.H.H.
Durability of Slag Based Geopolymer Stabilized Clay with High Moisture Condition
2024
International Journal of Integrated Engineering
16
4
10.30880/ijie.2024.16.04.006
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85201858448&doi=10.30880%2fijie.2024.16.04.006&partnerID=40&md5=bd8fb2909a0ab1a1dbe4aa9e30fb9112
Clay soils, characterized by their cohesiveness and water retention capacity, exhibit low aeration and tend to swell when water is absorbed, leading to subsequent contraction. The moisture content significantly affects the properties of marine clay, resulting in low strength and high compressibility. Traditional stabilizers such as lime and cement have been extensively studied for their ability to enhance the compressive strength, reduce swelling potential, and improve the overall durability of the soil. These stabilizers offer numerous benefits in terms of soil properties and have been extensively researched. However, due to environmental concerned, geopolymer has been explored as an alternative replacement to the traditional stabilizer. In this research, stabilized clay soil using ground granulated blast furnace slag (GGBS) based geopolymer were prepared and tested for the compressive strength and durability characteristic. Different percentages of GGBS (10%, 20% and 30%) were used to stabilize the clay soil with different activator/binder ratio (0.5, 0.75 and 1.0) and initial moisture content (0.75wL, 1.0wL, and 1.25wL). Cement stabilized specimen were also prepared for comparison. Unconfined compression test and wet-dry cycle were performed to evaluate the compressive strength and durability of treated soil. It was found that the strength of treated sample decreased with increment of initial moisture content. Increasing the binder dose was necessary to achieve the strength requirements for high water content soils. Thus, it shows that the use of a GGBS based geopolymer binder for the purpose of stabilizing soft soil is an alternative that is both effective and environmentally friendly. © (2024), (Penerbit UTHM). All rights reserved.
Penerbit UTHM
2229838X
English
Article

author Ahmad M.M.; Zaki M.F.M.; Ghazaly Z.M.; Bawadi N.F.; Nujid M.M.; Muhamad K.; Hong T.H.H.
spellingShingle Ahmad M.M.; Zaki M.F.M.; Ghazaly Z.M.; Bawadi N.F.; Nujid M.M.; Muhamad K.; Hong T.H.H.
Durability of Slag Based Geopolymer Stabilized Clay with High Moisture Condition
author_facet Ahmad M.M.; Zaki M.F.M.; Ghazaly Z.M.; Bawadi N.F.; Nujid M.M.; Muhamad K.; Hong T.H.H.
author_sort Ahmad M.M.; Zaki M.F.M.; Ghazaly Z.M.; Bawadi N.F.; Nujid M.M.; Muhamad K.; Hong T.H.H.
title Durability of Slag Based Geopolymer Stabilized Clay with High Moisture Condition
title_short Durability of Slag Based Geopolymer Stabilized Clay with High Moisture Condition
title_full Durability of Slag Based Geopolymer Stabilized Clay with High Moisture Condition
title_fullStr Durability of Slag Based Geopolymer Stabilized Clay with High Moisture Condition
title_full_unstemmed Durability of Slag Based Geopolymer Stabilized Clay with High Moisture Condition
title_sort Durability of Slag Based Geopolymer Stabilized Clay with High Moisture Condition
publishDate 2024
container_title International Journal of Integrated Engineering
container_volume 16
container_issue 4
doi_str_mv 10.30880/ijie.2024.16.04.006
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85201858448&doi=10.30880%2fijie.2024.16.04.006&partnerID=40&md5=bd8fb2909a0ab1a1dbe4aa9e30fb9112
description Clay soils, characterized by their cohesiveness and water retention capacity, exhibit low aeration and tend to swell when water is absorbed, leading to subsequent contraction. The moisture content significantly affects the properties of marine clay, resulting in low strength and high compressibility. Traditional stabilizers such as lime and cement have been extensively studied for their ability to enhance the compressive strength, reduce swelling potential, and improve the overall durability of the soil. These stabilizers offer numerous benefits in terms of soil properties and have been extensively researched. However, due to environmental concerned, geopolymer has been explored as an alternative replacement to the traditional stabilizer. In this research, stabilized clay soil using ground granulated blast furnace slag (GGBS) based geopolymer were prepared and tested for the compressive strength and durability characteristic. Different percentages of GGBS (10%, 20% and 30%) were used to stabilize the clay soil with different activator/binder ratio (0.5, 0.75 and 1.0) and initial moisture content (0.75wL, 1.0wL, and 1.25wL). Cement stabilized specimen were also prepared for comparison. Unconfined compression test and wet-dry cycle were performed to evaluate the compressive strength and durability of treated soil. It was found that the strength of treated sample decreased with increment of initial moisture content. Increasing the binder dose was necessary to achieve the strength requirements for high water content soils. Thus, it shows that the use of a GGBS based geopolymer binder for the purpose of stabilizing soft soil is an alternative that is both effective and environmentally friendly. © (2024), (Penerbit UTHM). All rights reserved.
publisher Penerbit UTHM
issn 2229838X
language English
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