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Strength Development and Elemental Distribution of Dolomite/Fly Ash Geopolymer Composite under Elevated Temperature

A geopolymer has been reckoned as a rising technology with huge potential for application across the globe. Dolomite refers to a material that can be used raw in producing geopolymers. Nevertheless, dolomite has slow strength development due to its low reactivity as a geopolymer. In this study, dolo...

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Autores principales: Azimi, Emy Aizat, Abdullah, Mohd Mustafa Al Bakri, Vizureanu, Petrica, Salleh, Mohd Arif Anuar Mohd, Sandu, Andrei Victor, Chaiprapa, Jitrin, Yoriya, Sorachon, Hussin, Kamarudin, Aziz, Ikmal Hakem
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7079652/
https://www.ncbi.nlm.nih.gov/pubmed/32102345
http://dx.doi.org/10.3390/ma13041015
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author Azimi, Emy Aizat
Abdullah, Mohd Mustafa Al Bakri
Vizureanu, Petrica
Salleh, Mohd Arif Anuar Mohd
Sandu, Andrei Victor
Chaiprapa, Jitrin
Yoriya, Sorachon
Hussin, Kamarudin
Aziz, Ikmal Hakem
author_facet Azimi, Emy Aizat
Abdullah, Mohd Mustafa Al Bakri
Vizureanu, Petrica
Salleh, Mohd Arif Anuar Mohd
Sandu, Andrei Victor
Chaiprapa, Jitrin
Yoriya, Sorachon
Hussin, Kamarudin
Aziz, Ikmal Hakem
author_sort Azimi, Emy Aizat
collection PubMed
description A geopolymer has been reckoned as a rising technology with huge potential for application across the globe. Dolomite refers to a material that can be used raw in producing geopolymers. Nevertheless, dolomite has slow strength development due to its low reactivity as a geopolymer. In this study, dolomite/fly ash (DFA) geopolymer composites were produced with dolomite, fly ash, sodium hydroxide, and liquid sodium silicate. A compression test was carried out on DFA geopolymers to determine the strength of the composite, while a synchrotron Micro-Xray Fluorescence (Micro-XRF) test was performed to assess the elemental distribution in the geopolymer composite. The temperature applied in this study generated promising properties of DFA geopolymers, especially in strength, which displayed increments up to 74.48 MPa as the optimum value. Heat seemed to enhance the strength development of DFA geopolymer composites. The elemental distribution analysis revealed exceptional outcomes for the composites, particularly exposure up to 400 °C, which signified the homogeneity of the DFA composites. Temperatures exceeding 400 °C accelerated the strength development, thus increasing the strength of the DFA composites. This appears to be unique because the strength of ordinary Portland Cement (OPC) and other geopolymers composed of other raw materials is typically either maintained or decreases due to increased heat.
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spelling pubmed-70796522020-03-24 Strength Development and Elemental Distribution of Dolomite/Fly Ash Geopolymer Composite under Elevated Temperature Azimi, Emy Aizat Abdullah, Mohd Mustafa Al Bakri Vizureanu, Petrica Salleh, Mohd Arif Anuar Mohd Sandu, Andrei Victor Chaiprapa, Jitrin Yoriya, Sorachon Hussin, Kamarudin Aziz, Ikmal Hakem Materials (Basel) Article A geopolymer has been reckoned as a rising technology with huge potential for application across the globe. Dolomite refers to a material that can be used raw in producing geopolymers. Nevertheless, dolomite has slow strength development due to its low reactivity as a geopolymer. In this study, dolomite/fly ash (DFA) geopolymer composites were produced with dolomite, fly ash, sodium hydroxide, and liquid sodium silicate. A compression test was carried out on DFA geopolymers to determine the strength of the composite, while a synchrotron Micro-Xray Fluorescence (Micro-XRF) test was performed to assess the elemental distribution in the geopolymer composite. The temperature applied in this study generated promising properties of DFA geopolymers, especially in strength, which displayed increments up to 74.48 MPa as the optimum value. Heat seemed to enhance the strength development of DFA geopolymer composites. The elemental distribution analysis revealed exceptional outcomes for the composites, particularly exposure up to 400 °C, which signified the homogeneity of the DFA composites. Temperatures exceeding 400 °C accelerated the strength development, thus increasing the strength of the DFA composites. This appears to be unique because the strength of ordinary Portland Cement (OPC) and other geopolymers composed of other raw materials is typically either maintained or decreases due to increased heat. MDPI 2020-02-24 /pmc/articles/PMC7079652/ /pubmed/32102345 http://dx.doi.org/10.3390/ma13041015 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Azimi, Emy Aizat
Abdullah, Mohd Mustafa Al Bakri
Vizureanu, Petrica
Salleh, Mohd Arif Anuar Mohd
Sandu, Andrei Victor
Chaiprapa, Jitrin
Yoriya, Sorachon
Hussin, Kamarudin
Aziz, Ikmal Hakem
Strength Development and Elemental Distribution of Dolomite/Fly Ash Geopolymer Composite under Elevated Temperature
title Strength Development and Elemental Distribution of Dolomite/Fly Ash Geopolymer Composite under Elevated Temperature
title_full Strength Development and Elemental Distribution of Dolomite/Fly Ash Geopolymer Composite under Elevated Temperature
title_fullStr Strength Development and Elemental Distribution of Dolomite/Fly Ash Geopolymer Composite under Elevated Temperature
title_full_unstemmed Strength Development and Elemental Distribution of Dolomite/Fly Ash Geopolymer Composite under Elevated Temperature
title_short Strength Development and Elemental Distribution of Dolomite/Fly Ash Geopolymer Composite under Elevated Temperature
title_sort strength development and elemental distribution of dolomite/fly ash geopolymer composite under elevated temperature
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7079652/
https://www.ncbi.nlm.nih.gov/pubmed/32102345
http://dx.doi.org/10.3390/ma13041015
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