Cargando…

An Elucidative Review of the Nanomaterial Effect on the Durability and Calcium-Silicate-Hydrate (C-S-H) Gel Development of Concrete

Concrete as a building material is susceptible to degradation by environmental threats such as thermal diffusion, acid and sulphate infiltration, and chloride penetration. Hence, the inclusion of nanomaterials in concrete has a positive effect in terms of promoting its mechanical strength and durabi...

Descripción completa

Detalles Bibliográficos
Autores principales: Al-saffar, Farqad Yousuf, Wong, Leong Sing, Paul, Suvash Chandra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10453857/
https://www.ncbi.nlm.nih.gov/pubmed/37623068
http://dx.doi.org/10.3390/gels9080613
_version_ 1785096045892468736
author Al-saffar, Farqad Yousuf
Wong, Leong Sing
Paul, Suvash Chandra
author_facet Al-saffar, Farqad Yousuf
Wong, Leong Sing
Paul, Suvash Chandra
author_sort Al-saffar, Farqad Yousuf
collection PubMed
description Concrete as a building material is susceptible to degradation by environmental threats such as thermal diffusion, acid and sulphate infiltration, and chloride penetration. Hence, the inclusion of nanomaterials in concrete has a positive effect in terms of promoting its mechanical strength and durability performance, as well as resulting in energy savings due to reduced cement consumption in concrete production. This review article discussed the novel advances in research regarding C-S-H gel promotion and concrete durability improvement using nanomaterials. Basically, this review deals with topics relevant to the influence of nanomaterials on concrete’s resistance to heat, acid, sulphate, chlorides, and wear deterioration, as well as the impact on concrete microstructure and chemical bonding. The significance of this review is a critical discussion on the cementation mechanism of nanoparticles in enhancing durability properties owing to their nanofiller effect, pozzolanic reactivity, and nucleation effect. The utilization of nanoparticles enhanced the hydrolysis of cement, leading to a rise in the production of C-S-H gel. Consequently, this improvement in concrete microstructure led to a reduction in the number of capillary pores and pore connectivity, thereby improving the concrete’s water resistance. Microstructural and chemical evidence obtained using SEM and XRD indicated that nanomaterials facilitated the formation of cement gel either by reacting pozzolanically with portlandite to generate more C-S-H gel or by functioning as nucleation sites. Due to an increased rate of C-S-H gel formation, concrete enhanced with nanoparticles exhibited greater durability against heat damage, external attack by acids and sulphates, chloride diffusion, and surface abrasion. The durability improvement following nanomaterial incorporation into concrete can be summarised as enhanced residual mechanical strength, reduced concrete mass loss, reduced diffusion coefficients for thermal and chloride, improved performance against sulphates and acid attack, and increased surface resistance to abrasion.
format Online
Article
Text
id pubmed-10453857
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-104538572023-08-26 An Elucidative Review of the Nanomaterial Effect on the Durability and Calcium-Silicate-Hydrate (C-S-H) Gel Development of Concrete Al-saffar, Farqad Yousuf Wong, Leong Sing Paul, Suvash Chandra Gels Review Concrete as a building material is susceptible to degradation by environmental threats such as thermal diffusion, acid and sulphate infiltration, and chloride penetration. Hence, the inclusion of nanomaterials in concrete has a positive effect in terms of promoting its mechanical strength and durability performance, as well as resulting in energy savings due to reduced cement consumption in concrete production. This review article discussed the novel advances in research regarding C-S-H gel promotion and concrete durability improvement using nanomaterials. Basically, this review deals with topics relevant to the influence of nanomaterials on concrete’s resistance to heat, acid, sulphate, chlorides, and wear deterioration, as well as the impact on concrete microstructure and chemical bonding. The significance of this review is a critical discussion on the cementation mechanism of nanoparticles in enhancing durability properties owing to their nanofiller effect, pozzolanic reactivity, and nucleation effect. The utilization of nanoparticles enhanced the hydrolysis of cement, leading to a rise in the production of C-S-H gel. Consequently, this improvement in concrete microstructure led to a reduction in the number of capillary pores and pore connectivity, thereby improving the concrete’s water resistance. Microstructural and chemical evidence obtained using SEM and XRD indicated that nanomaterials facilitated the formation of cement gel either by reacting pozzolanically with portlandite to generate more C-S-H gel or by functioning as nucleation sites. Due to an increased rate of C-S-H gel formation, concrete enhanced with nanoparticles exhibited greater durability against heat damage, external attack by acids and sulphates, chloride diffusion, and surface abrasion. The durability improvement following nanomaterial incorporation into concrete can be summarised as enhanced residual mechanical strength, reduced concrete mass loss, reduced diffusion coefficients for thermal and chloride, improved performance against sulphates and acid attack, and increased surface resistance to abrasion. MDPI 2023-07-28 /pmc/articles/PMC10453857/ /pubmed/37623068 http://dx.doi.org/10.3390/gels9080613 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Al-saffar, Farqad Yousuf
Wong, Leong Sing
Paul, Suvash Chandra
An Elucidative Review of the Nanomaterial Effect on the Durability and Calcium-Silicate-Hydrate (C-S-H) Gel Development of Concrete
title An Elucidative Review of the Nanomaterial Effect on the Durability and Calcium-Silicate-Hydrate (C-S-H) Gel Development of Concrete
title_full An Elucidative Review of the Nanomaterial Effect on the Durability and Calcium-Silicate-Hydrate (C-S-H) Gel Development of Concrete
title_fullStr An Elucidative Review of the Nanomaterial Effect on the Durability and Calcium-Silicate-Hydrate (C-S-H) Gel Development of Concrete
title_full_unstemmed An Elucidative Review of the Nanomaterial Effect on the Durability and Calcium-Silicate-Hydrate (C-S-H) Gel Development of Concrete
title_short An Elucidative Review of the Nanomaterial Effect on the Durability and Calcium-Silicate-Hydrate (C-S-H) Gel Development of Concrete
title_sort elucidative review of the nanomaterial effect on the durability and calcium-silicate-hydrate (c-s-h) gel development of concrete
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10453857/
https://www.ncbi.nlm.nih.gov/pubmed/37623068
http://dx.doi.org/10.3390/gels9080613
work_keys_str_mv AT alsaffarfarqadyousuf anelucidativereviewofthenanomaterialeffectonthedurabilityandcalciumsilicatehydratecshgeldevelopmentofconcrete
AT wongleongsing anelucidativereviewofthenanomaterialeffectonthedurabilityandcalciumsilicatehydratecshgeldevelopmentofconcrete
AT paulsuvashchandra anelucidativereviewofthenanomaterialeffectonthedurabilityandcalciumsilicatehydratecshgeldevelopmentofconcrete
AT alsaffarfarqadyousuf elucidativereviewofthenanomaterialeffectonthedurabilityandcalciumsilicatehydratecshgeldevelopmentofconcrete
AT wongleongsing elucidativereviewofthenanomaterialeffectonthedurabilityandcalciumsilicatehydratecshgeldevelopmentofconcrete
AT paulsuvashchandra elucidativereviewofthenanomaterialeffectonthedurabilityandcalciumsilicatehydratecshgeldevelopmentofconcrete