Nanomaterials in recycled aggregates concrete applications: mechanical properties and durability. A review

The use of recycled aggregates concrete (RAC) contributes effectively to reduce CO2 emissions from concrete manufacturing process while also protecting natural resources by utilizing existing available concrete as an aggregates source for a new one. Studies on the behaviour of RAC have revealed nega...

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Published in:Cogent Engineering
Main Author: Allujami H.M.; Abdulkareem M.; Jassam T.M.; Al-Mansob R.A.; Ng J.L.; Ibrahim A.
Format: Review
Language:English
Published: Cogent OA 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85138256849&doi=10.1080%2f23311916.2022.2122885&partnerID=40&md5=d73f0a86fde82409fba069e9a2ca15fa
id 2-s2.0-85138256849
spelling 2-s2.0-85138256849
Allujami H.M.; Abdulkareem M.; Jassam T.M.; Al-Mansob R.A.; Ng J.L.; Ibrahim A.
Nanomaterials in recycled aggregates concrete applications: mechanical properties and durability. A review
2022
Cogent Engineering
9
1
10.1080/23311916.2022.2122885
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85138256849&doi=10.1080%2f23311916.2022.2122885&partnerID=40&md5=d73f0a86fde82409fba069e9a2ca15fa
The use of recycled aggregates concrete (RAC) contributes effectively to reduce CO2 emissions from concrete manufacturing process while also protecting natural resources by utilizing existing available concrete as an aggregates source for a new one. Studies on the behaviour of RAC have revealed negative effects on concrete strength and microstructure development, resulting in deterioration of mechanical and durability properties. As a result, numerous practical studies have been implemented to enhance the RAC properties using various treatment techniques such as chemical, physical and heating treatments. However, most of these techniques are ineffective compared to conventional concrete applications due to poor mechanical performance of RAC, insufficient environmental requirements, and prolonged treatment times. Recently, the use of nanomaterials has been given significant concern in RAC research. Their nano-sized particles can help to reduce micropores formation by acting as a filling agent to produce a high-density microstructure, thereby enhancing the mechanical properties and durability of RAC. This had led to a wide range of studies being published on improving RAC properties by using nanomaterials. However, relatively few literatures had been conducted on the effects of different types of nanomaterials on the performance of RAC exposed to various types of loads and various external environmental impacts. Besides, the conditions used by authors in these literatures limit comparisons, and in some cases contradictory findings are observed. Thus, this paper aims to bridge the knowledge gap between researchers. This would allow the potential of nanotechnology in innovations to be applied in appropriate areas of RAC applications to benefit the general public good. This paper aims to provide a critical review and comprehensive conclusions on the performance of nano-modified RAC under external loads, environmental impacts and other various conditions. The effects of nanomaterials on the compressive, tensile, and flexural strength of RAC are discussed. The nanomaterials considered are nano-SiO2, nano-CaCO3, nano-TiO2, nano-Clay, nano-Al2O3, and nano-Carbon. Durability characteristics including water absorption, chloride penetration, fire exposure, abrasion resistance, acid and carbonation diffusions are extensively discussed. Microstructure characteristics using SEM, XRD, EDS, and micro-hardness of nano-modified RAC are addressed as well. © 2022 The Author(s). This open access article is distributed under a Creative Commons Attribution (CC-BY) 4.0 license.
Cogent OA
23311916
English
Review

author Allujami H.M.; Abdulkareem M.; Jassam T.M.; Al-Mansob R.A.; Ng J.L.; Ibrahim A.
spellingShingle Allujami H.M.; Abdulkareem M.; Jassam T.M.; Al-Mansob R.A.; Ng J.L.; Ibrahim A.
Nanomaterials in recycled aggregates concrete applications: mechanical properties and durability. A review
author_facet Allujami H.M.; Abdulkareem M.; Jassam T.M.; Al-Mansob R.A.; Ng J.L.; Ibrahim A.
author_sort Allujami H.M.; Abdulkareem M.; Jassam T.M.; Al-Mansob R.A.; Ng J.L.; Ibrahim A.
title Nanomaterials in recycled aggregates concrete applications: mechanical properties and durability. A review
title_short Nanomaterials in recycled aggregates concrete applications: mechanical properties and durability. A review
title_full Nanomaterials in recycled aggregates concrete applications: mechanical properties and durability. A review
title_fullStr Nanomaterials in recycled aggregates concrete applications: mechanical properties and durability. A review
title_full_unstemmed Nanomaterials in recycled aggregates concrete applications: mechanical properties and durability. A review
title_sort Nanomaterials in recycled aggregates concrete applications: mechanical properties and durability. A review
publishDate 2022
container_title Cogent Engineering
container_volume 9
container_issue 1
doi_str_mv 10.1080/23311916.2022.2122885
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85138256849&doi=10.1080%2f23311916.2022.2122885&partnerID=40&md5=d73f0a86fde82409fba069e9a2ca15fa
description The use of recycled aggregates concrete (RAC) contributes effectively to reduce CO2 emissions from concrete manufacturing process while also protecting natural resources by utilizing existing available concrete as an aggregates source for a new one. Studies on the behaviour of RAC have revealed negative effects on concrete strength and microstructure development, resulting in deterioration of mechanical and durability properties. As a result, numerous practical studies have been implemented to enhance the RAC properties using various treatment techniques such as chemical, physical and heating treatments. However, most of these techniques are ineffective compared to conventional concrete applications due to poor mechanical performance of RAC, insufficient environmental requirements, and prolonged treatment times. Recently, the use of nanomaterials has been given significant concern in RAC research. Their nano-sized particles can help to reduce micropores formation by acting as a filling agent to produce a high-density microstructure, thereby enhancing the mechanical properties and durability of RAC. This had led to a wide range of studies being published on improving RAC properties by using nanomaterials. However, relatively few literatures had been conducted on the effects of different types of nanomaterials on the performance of RAC exposed to various types of loads and various external environmental impacts. Besides, the conditions used by authors in these literatures limit comparisons, and in some cases contradictory findings are observed. Thus, this paper aims to bridge the knowledge gap between researchers. This would allow the potential of nanotechnology in innovations to be applied in appropriate areas of RAC applications to benefit the general public good. This paper aims to provide a critical review and comprehensive conclusions on the performance of nano-modified RAC under external loads, environmental impacts and other various conditions. The effects of nanomaterials on the compressive, tensile, and flexural strength of RAC are discussed. The nanomaterials considered are nano-SiO2, nano-CaCO3, nano-TiO2, nano-Clay, nano-Al2O3, and nano-Carbon. Durability characteristics including water absorption, chloride penetration, fire exposure, abrasion resistance, acid and carbonation diffusions are extensively discussed. Microstructure characteristics using SEM, XRD, EDS, and micro-hardness of nano-modified RAC are addressed as well. © 2022 The Author(s). This open access article is distributed under a Creative Commons Attribution (CC-BY) 4.0 license.
publisher Cogent OA
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