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A study on the strength and durability characteristics of fiber-reinforced recycled aggregate concrete modified with supplementary cementitious material

Recycled aggregate (RA) made from waste concrete is an environmentally friendly alternative to natural aggregate (NA) for concrete manufacturing. However, compared to NA concrete, concrete produced with recycled aggregates has poor characteristics. Supplementary cementitious materials (SCMs) can be...

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Autores principales: Zaid, Osama, Althoey, Fadi, García, Rebeca Martínez, de Prado-Gil, Jesús, Alsulamy, Saleh, Abuhussain, Mohammed Awad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10559677/
https://www.ncbi.nlm.nih.gov/pubmed/37809756
http://dx.doi.org/10.1016/j.heliyon.2023.e19978
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author Zaid, Osama
Althoey, Fadi
García, Rebeca Martínez
de Prado-Gil, Jesús
Alsulamy, Saleh
Abuhussain, Mohammed Awad
author_facet Zaid, Osama
Althoey, Fadi
García, Rebeca Martínez
de Prado-Gil, Jesús
Alsulamy, Saleh
Abuhussain, Mohammed Awad
author_sort Zaid, Osama
collection PubMed
description Recycled aggregate (RA) made from waste concrete is an environmentally friendly alternative to natural aggregate (NA) for concrete manufacturing. However, compared to NA concrete, concrete produced with recycled aggregates has poor characteristics. Supplementary cementitious materials (SCMs) can be used to enhance the poor properties of recycled aggregate concrete (RAC). Silica fume and fly ash are commonly used SCMs in the World, but their high usage led to a shortage of silica fume and fly ash. Still, the deficiency of these materials in large parts of the world is a challenge that requires exploring alternative feedstock materials for the construction industry in the coming years. Wheat straw ash (WSA) is an agricultural waste product that could be used as an alternative SCM due to its pozzolanic behavior to enhance the properties of RAC. In addition, concrete is brittle and needs reinforcement, for which polypropylene fibers (PPFs) can be used. The current research examines the mechanical characteristics of fiber-reinforced RAC, including compressive strength, splitting tensile strength, and ductility performance. Durability indicators, such as chloride diffusion, chloride penetration, acid resistance, and water absorption test, were also assessed. The results showed that concrete samples with 10% WSA, 50% RA and 1.5% PPFs had the highest compressive and splitting tensile strength, 60.2 MPa and 7.25 MPa, respectively, representing increases of 24.75% and 30.65%, as compared to plain samples at 56 days. In these samples, water absorption was reduced by 13% due to the finer WSA particles resulting in the lowest reduction in strength and mass recorded when exposing concrete samples to acidic media. The statistical analysis also validated that irrespective of WSA and PPFs, the concrete with 0% RA had the highest performance in strength and durability behavior. The study showed that WSA and PPFs might be employed in tandem to offset the poor behavior of RA, enhance the bond between fibers and concrete, and improve the mechanical strength and durability performance of RAC, thus demonstrating its suitability as a sustainable and economical construction material.
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spelling pubmed-105596772023-10-08 A study on the strength and durability characteristics of fiber-reinforced recycled aggregate concrete modified with supplementary cementitious material Zaid, Osama Althoey, Fadi García, Rebeca Martínez de Prado-Gil, Jesús Alsulamy, Saleh Abuhussain, Mohammed Awad Heliyon Research Article Recycled aggregate (RA) made from waste concrete is an environmentally friendly alternative to natural aggregate (NA) for concrete manufacturing. However, compared to NA concrete, concrete produced with recycled aggregates has poor characteristics. Supplementary cementitious materials (SCMs) can be used to enhance the poor properties of recycled aggregate concrete (RAC). Silica fume and fly ash are commonly used SCMs in the World, but their high usage led to a shortage of silica fume and fly ash. Still, the deficiency of these materials in large parts of the world is a challenge that requires exploring alternative feedstock materials for the construction industry in the coming years. Wheat straw ash (WSA) is an agricultural waste product that could be used as an alternative SCM due to its pozzolanic behavior to enhance the properties of RAC. In addition, concrete is brittle and needs reinforcement, for which polypropylene fibers (PPFs) can be used. The current research examines the mechanical characteristics of fiber-reinforced RAC, including compressive strength, splitting tensile strength, and ductility performance. Durability indicators, such as chloride diffusion, chloride penetration, acid resistance, and water absorption test, were also assessed. The results showed that concrete samples with 10% WSA, 50% RA and 1.5% PPFs had the highest compressive and splitting tensile strength, 60.2 MPa and 7.25 MPa, respectively, representing increases of 24.75% and 30.65%, as compared to plain samples at 56 days. In these samples, water absorption was reduced by 13% due to the finer WSA particles resulting in the lowest reduction in strength and mass recorded when exposing concrete samples to acidic media. The statistical analysis also validated that irrespective of WSA and PPFs, the concrete with 0% RA had the highest performance in strength and durability behavior. The study showed that WSA and PPFs might be employed in tandem to offset the poor behavior of RA, enhance the bond between fibers and concrete, and improve the mechanical strength and durability performance of RAC, thus demonstrating its suitability as a sustainable and economical construction material. Elsevier 2023-09-09 /pmc/articles/PMC10559677/ /pubmed/37809756 http://dx.doi.org/10.1016/j.heliyon.2023.e19978 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Zaid, Osama
Althoey, Fadi
García, Rebeca Martínez
de Prado-Gil, Jesús
Alsulamy, Saleh
Abuhussain, Mohammed Awad
A study on the strength and durability characteristics of fiber-reinforced recycled aggregate concrete modified with supplementary cementitious material
title A study on the strength and durability characteristics of fiber-reinforced recycled aggregate concrete modified with supplementary cementitious material
title_full A study on the strength and durability characteristics of fiber-reinforced recycled aggregate concrete modified with supplementary cementitious material
title_fullStr A study on the strength and durability characteristics of fiber-reinforced recycled aggregate concrete modified with supplementary cementitious material
title_full_unstemmed A study on the strength and durability characteristics of fiber-reinforced recycled aggregate concrete modified with supplementary cementitious material
title_short A study on the strength and durability characteristics of fiber-reinforced recycled aggregate concrete modified with supplementary cementitious material
title_sort study on the strength and durability characteristics of fiber-reinforced recycled aggregate concrete modified with supplementary cementitious material
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10559677/
https://www.ncbi.nlm.nih.gov/pubmed/37809756
http://dx.doi.org/10.1016/j.heliyon.2023.e19978
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