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Mechanical and microstructural properties of high calcium fly ash one-part geopolymer cement made with granular activator

In this present experimental study, geopolymer cement is developed using high calcium fly ash and used in the production of one-part alkali-activated binders. At 8–16 percent of the total precursor materials, the HCFA was activated with anhydrous sodium metasilicate powder and cured in ambient condi...

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Autores principales: Mohammed, Bashar S., Haruna, Sani, Wahab, M.M.A., Liew, M.S., Haruna, Abdulrahman
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6819772/
https://www.ncbi.nlm.nih.gov/pubmed/31687531
http://dx.doi.org/10.1016/j.heliyon.2019.e02255
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author Mohammed, Bashar S.
Haruna, Sani
Wahab, M.M.A.
Liew, M.S.
Haruna, Abdulrahman
author_facet Mohammed, Bashar S.
Haruna, Sani
Wahab, M.M.A.
Liew, M.S.
Haruna, Abdulrahman
author_sort Mohammed, Bashar S.
collection PubMed
description In this present experimental study, geopolymer cement is developed using high calcium fly ash and used in the production of one-part alkali-activated binders. At 8–16 percent of the total precursor materials, the HCFA was activated with anhydrous sodium metasilicate powder and cured in ambient condition. Five mixtures of one-part geopolymer paste were intended at a steady w/b proportion. Density, flowability, setting time, compressive strength, splitting tensile strength and molar ratio impact were envisaged. It was observed that the setting time of the designed one-part geopolymer paste decreases with higher activator content. The experimental findings showed that the resistance of one-part geopolymer cement paste increases with comparatively greater activator content. However, raising the granular activator beyond 12 percent by fly ash weight decreases the strength and workability of the established one-part geopolymer cement. The optimum mix by weight of the fly ash was discovered to be 12 percent (i.e. 6 percent Na(2)O). At 28 days of curing, one-part alkali-activated paste recorded the greatest compressive strength of almost 50 MPa. The density of the one-part geopolymer paste is nearly the same regardless of the mixes. Microstructural assessment by FESEM, FTIR and XRD has shown that the established geopolymer paste includes quartz, pyrrhotite, aluminosilicate sodium and hydrate gels of calcium aluminosilicate. Based on the experimental information acquired, it can be deduced that the strength growth of one-part geopolymer cement is similar to that of Portland cement.
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spelling pubmed-68197722019-11-04 Mechanical and microstructural properties of high calcium fly ash one-part geopolymer cement made with granular activator Mohammed, Bashar S. Haruna, Sani Wahab, M.M.A. Liew, M.S. Haruna, Abdulrahman Heliyon Article In this present experimental study, geopolymer cement is developed using high calcium fly ash and used in the production of one-part alkali-activated binders. At 8–16 percent of the total precursor materials, the HCFA was activated with anhydrous sodium metasilicate powder and cured in ambient condition. Five mixtures of one-part geopolymer paste were intended at a steady w/b proportion. Density, flowability, setting time, compressive strength, splitting tensile strength and molar ratio impact were envisaged. It was observed that the setting time of the designed one-part geopolymer paste decreases with higher activator content. The experimental findings showed that the resistance of one-part geopolymer cement paste increases with comparatively greater activator content. However, raising the granular activator beyond 12 percent by fly ash weight decreases the strength and workability of the established one-part geopolymer cement. The optimum mix by weight of the fly ash was discovered to be 12 percent (i.e. 6 percent Na(2)O). At 28 days of curing, one-part alkali-activated paste recorded the greatest compressive strength of almost 50 MPa. The density of the one-part geopolymer paste is nearly the same regardless of the mixes. Microstructural assessment by FESEM, FTIR and XRD has shown that the established geopolymer paste includes quartz, pyrrhotite, aluminosilicate sodium and hydrate gels of calcium aluminosilicate. Based on the experimental information acquired, it can be deduced that the strength growth of one-part geopolymer cement is similar to that of Portland cement. Elsevier 2019-09-13 /pmc/articles/PMC6819772/ /pubmed/31687531 http://dx.doi.org/10.1016/j.heliyon.2019.e02255 Text en © 2019 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Mohammed, Bashar S.
Haruna, Sani
Wahab, M.M.A.
Liew, M.S.
Haruna, Abdulrahman
Mechanical and microstructural properties of high calcium fly ash one-part geopolymer cement made with granular activator
title Mechanical and microstructural properties of high calcium fly ash one-part geopolymer cement made with granular activator
title_full Mechanical and microstructural properties of high calcium fly ash one-part geopolymer cement made with granular activator
title_fullStr Mechanical and microstructural properties of high calcium fly ash one-part geopolymer cement made with granular activator
title_full_unstemmed Mechanical and microstructural properties of high calcium fly ash one-part geopolymer cement made with granular activator
title_short Mechanical and microstructural properties of high calcium fly ash one-part geopolymer cement made with granular activator
title_sort mechanical and microstructural properties of high calcium fly ash one-part geopolymer cement made with granular activator
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6819772/
https://www.ncbi.nlm.nih.gov/pubmed/31687531
http://dx.doi.org/10.1016/j.heliyon.2019.e02255
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