Effect of the addition of nano glass powder on the compressive strength of high volume fly ash modified concrete

Using high-volume fly ash as a cement alternative has gained popularity among researchers since it reduces CO2 emissions by minimizing cement production. However, the low strength at early ages remains the main barrier to replace cement with significant amounts of fly ash. Due to their abundance and...

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Main Authors: Onaizi, Ali M., Abdul Shukor Lim, Nor Hasanah, Huseien, Ghasan F., Amran, Mugahed, Chau, Khun Ma
Format: Conference or Workshop Item
Published: 2022
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Online Access:http://eprints.utm.my/id/eprint/98573/
http://dx.doi.org/10.1016/j.matpr.2021.08.347
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Institution: Universiti Teknologi Malaysia
id my.utm.98573
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spelling my.utm.985732023-01-17T09:30:56Z http://eprints.utm.my/id/eprint/98573/ Effect of the addition of nano glass powder on the compressive strength of high volume fly ash modified concrete Onaizi, Ali M. Abdul Shukor Lim, Nor Hasanah Huseien, Ghasan F. Amran, Mugahed Chau, Khun Ma TA Engineering (General). Civil engineering (General) Using high-volume fly ash as a cement alternative has gained popularity among researchers since it reduces CO2 emissions by minimizing cement production. However, the low strength at early ages remains the main barrier to replace cement with significant amounts of fly ash. Due to their abundance and low cost, nanoparticles derived from waste glass bottles may represent a potential material to boost strength at early ages. It possesses sufficient pozzolanic properties to contribute by a pozzolanic reaction which helps to compensate for the early strength loss associated with high volume fly ash (HVFA) concrete. The purpose of this study is to develop HVFA concrete mixture containing glass powder as a nano additive. To accomplish this, two groups of samples were prepared with 50% fly ash as a cement substitute and 5% and 10% waste glass powder as nano additives. Based on the water content, two groups were prepared. Group 1 was prepared with a water/cement (w/c) ratio of 0.5, while group 2 with w/c of 0.45. The results indicated that the workability of concrete was decreased when glass nanoparticles were added for both groups. However, with regard to compressive strength, the study discovered a significant improvement, particularly when 5% glass nanoparticles were used, which demonstrated high performance comparable to that of control samples of normal concrete. 2022 Conference or Workshop Item PeerReviewed Onaizi, Ali M. and Abdul Shukor Lim, Nor Hasanah and Huseien, Ghasan F. and Amran, Mugahed and Chau, Khun Ma (2022) Effect of the addition of nano glass powder on the compressive strength of high volume fly ash modified concrete. In: 2nd Innovative Manufacturing, Mechatronics and Materials Forum, iM3F 2021, 20 September 2021, Pekan, Pahang, Malaysia. http://dx.doi.org/10.1016/j.matpr.2021.08.347
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TA Engineering (General). Civil engineering (General)
spellingShingle TA Engineering (General). Civil engineering (General)
Onaizi, Ali M.
Abdul Shukor Lim, Nor Hasanah
Huseien, Ghasan F.
Amran, Mugahed
Chau, Khun Ma
Effect of the addition of nano glass powder on the compressive strength of high volume fly ash modified concrete
description Using high-volume fly ash as a cement alternative has gained popularity among researchers since it reduces CO2 emissions by minimizing cement production. However, the low strength at early ages remains the main barrier to replace cement with significant amounts of fly ash. Due to their abundance and low cost, nanoparticles derived from waste glass bottles may represent a potential material to boost strength at early ages. It possesses sufficient pozzolanic properties to contribute by a pozzolanic reaction which helps to compensate for the early strength loss associated with high volume fly ash (HVFA) concrete. The purpose of this study is to develop HVFA concrete mixture containing glass powder as a nano additive. To accomplish this, two groups of samples were prepared with 50% fly ash as a cement substitute and 5% and 10% waste glass powder as nano additives. Based on the water content, two groups were prepared. Group 1 was prepared with a water/cement (w/c) ratio of 0.5, while group 2 with w/c of 0.45. The results indicated that the workability of concrete was decreased when glass nanoparticles were added for both groups. However, with regard to compressive strength, the study discovered a significant improvement, particularly when 5% glass nanoparticles were used, which demonstrated high performance comparable to that of control samples of normal concrete.
format Conference or Workshop Item
author Onaizi, Ali M.
Abdul Shukor Lim, Nor Hasanah
Huseien, Ghasan F.
Amran, Mugahed
Chau, Khun Ma
author_facet Onaizi, Ali M.
Abdul Shukor Lim, Nor Hasanah
Huseien, Ghasan F.
Amran, Mugahed
Chau, Khun Ma
author_sort Onaizi, Ali M.
title Effect of the addition of nano glass powder on the compressive strength of high volume fly ash modified concrete
title_short Effect of the addition of nano glass powder on the compressive strength of high volume fly ash modified concrete
title_full Effect of the addition of nano glass powder on the compressive strength of high volume fly ash modified concrete
title_fullStr Effect of the addition of nano glass powder on the compressive strength of high volume fly ash modified concrete
title_full_unstemmed Effect of the addition of nano glass powder on the compressive strength of high volume fly ash modified concrete
title_sort effect of the addition of nano glass powder on the compressive strength of high volume fly ash modified concrete
publishDate 2022
url http://eprints.utm.my/id/eprint/98573/
http://dx.doi.org/10.1016/j.matpr.2021.08.347
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