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Performance of Different Concrete Types Exposed to Elevated Temperatures: A Review

Concrete is a heterogeneous material that consists of cement, aggregates, and water as basic constituents. Several cementitious materials and additives are added with different volumetric ratios to improve the strength and durability requirements of concrete. Consequently, performance of concrete wh...

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Autores principales: Alhamad, Amjad, Yehia, Sherif, Lublóy, Éva, Elchalakani, Mohamed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9324992/
https://www.ncbi.nlm.nih.gov/pubmed/35888499
http://dx.doi.org/10.3390/ma15145032
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author Alhamad, Amjad
Yehia, Sherif
Lublóy, Éva
Elchalakani, Mohamed
author_facet Alhamad, Amjad
Yehia, Sherif
Lublóy, Éva
Elchalakani, Mohamed
author_sort Alhamad, Amjad
collection PubMed
description Concrete is a heterogeneous material that consists of cement, aggregates, and water as basic constituents. Several cementitious materials and additives are added with different volumetric ratios to improve the strength and durability requirements of concrete. Consequently, performance of concrete when exposed to elevated temperature is greatly affected by the concrete type. Moreover, post-fire properties of concrete are influenced by the constituents of each concrete type. Heating rate, days of curing, type of curing, cooling method, and constituents of the mix are some of the factors that impact the post-fire behavior of concrete structures. In this paper, an extensive review was conducted and focused on the effect of concrete constituents on the overall behavior of concrete when exposed to elevated temperature. It was evident that utilizing fibers can improve the tensile capacity of concrete after exposure to higher temperatures. However, there is an increased risk of spalling due to the induced internal stresses. In addition, supplementary cementitious materials such as metakaolin and silica fume enhanced concrete strength, the latter proving to be the most effective. In terms of the heating process, it was clear that several constituents, such as silica fume or fly ash, that decrease absorption affect overall workability, increase the compressive strength of concrete, and can yield an increase in the strength of concrete at 200 °C. Most of the concrete types show a moderate and steady decrease in the strength up until 400 °C. However, the decrease is more rapid until the concrete reaches 800 °C or 1000 °C at which it spalls or cannot take any applied load. This review highlighted the need for more research and codes’ provisions to account for different types of concrete constituents and advanced construction materials technology.
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spelling pubmed-93249922022-07-27 Performance of Different Concrete Types Exposed to Elevated Temperatures: A Review Alhamad, Amjad Yehia, Sherif Lublóy, Éva Elchalakani, Mohamed Materials (Basel) Review Concrete is a heterogeneous material that consists of cement, aggregates, and water as basic constituents. Several cementitious materials and additives are added with different volumetric ratios to improve the strength and durability requirements of concrete. Consequently, performance of concrete when exposed to elevated temperature is greatly affected by the concrete type. Moreover, post-fire properties of concrete are influenced by the constituents of each concrete type. Heating rate, days of curing, type of curing, cooling method, and constituents of the mix are some of the factors that impact the post-fire behavior of concrete structures. In this paper, an extensive review was conducted and focused on the effect of concrete constituents on the overall behavior of concrete when exposed to elevated temperature. It was evident that utilizing fibers can improve the tensile capacity of concrete after exposure to higher temperatures. However, there is an increased risk of spalling due to the induced internal stresses. In addition, supplementary cementitious materials such as metakaolin and silica fume enhanced concrete strength, the latter proving to be the most effective. In terms of the heating process, it was clear that several constituents, such as silica fume or fly ash, that decrease absorption affect overall workability, increase the compressive strength of concrete, and can yield an increase in the strength of concrete at 200 °C. Most of the concrete types show a moderate and steady decrease in the strength up until 400 °C. However, the decrease is more rapid until the concrete reaches 800 °C or 1000 °C at which it spalls or cannot take any applied load. This review highlighted the need for more research and codes’ provisions to account for different types of concrete constituents and advanced construction materials technology. MDPI 2022-07-20 /pmc/articles/PMC9324992/ /pubmed/35888499 http://dx.doi.org/10.3390/ma15145032 Text en © 2022 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
Alhamad, Amjad
Yehia, Sherif
Lublóy, Éva
Elchalakani, Mohamed
Performance of Different Concrete Types Exposed to Elevated Temperatures: A Review
title Performance of Different Concrete Types Exposed to Elevated Temperatures: A Review
title_full Performance of Different Concrete Types Exposed to Elevated Temperatures: A Review
title_fullStr Performance of Different Concrete Types Exposed to Elevated Temperatures: A Review
title_full_unstemmed Performance of Different Concrete Types Exposed to Elevated Temperatures: A Review
title_short Performance of Different Concrete Types Exposed to Elevated Temperatures: A Review
title_sort performance of different concrete types exposed to elevated temperatures: a review
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9324992/
https://www.ncbi.nlm.nih.gov/pubmed/35888499
http://dx.doi.org/10.3390/ma15145032
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