Rock wool-reinforced concrete: Physico-mechanical properties and predictive modelling

Recent developments in lightweight concrete (LWC) have led to a renewed interest in incorporating fibers in concrete. However, research on the specific application of rock wool fiber in LWC is scarce. Hence, the present study aims to investigate the physical and mechanical characteristics of LWC wit...

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Main Authors: Yap, Zhen Shyong, A. Khalid, Nur Hafizah, Haron, Zaiton, Khu, Wai Hoong, Yeak, Su Hoe, Amran, Mugahed
Format: Article
Language:English
Published: Elsevier Ltd. 2022
Subjects:
Online Access:http://eprints.utm.my/102941/1/NurHafizahKhalid2022_RockWoolReinforcedConcrete_compressed.pdf
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author Yap, Zhen Shyong
A. Khalid, Nur Hafizah
Haron, Zaiton
Khu, Wai Hoong
Yeak, Su Hoe
Amran, Mugahed
author_facet Yap, Zhen Shyong
A. Khalid, Nur Hafizah
Haron, Zaiton
Khu, Wai Hoong
Yeak, Su Hoe
Amran, Mugahed
author_sort Yap, Zhen Shyong
collection ePrints
description Recent developments in lightweight concrete (LWC) have led to a renewed interest in incorporating fibers in concrete. However, research on the specific application of rock wool fiber in LWC is scarce. Hence, the present study aims to investigate the physical and mechanical characteristics of LWC with the inclusion of rock wool fibers (0%–15%) in different water-cement ratios (0.4, 0.5 and 0.6). The relationships between mix proportion and the density, permeable void, water absorption, compressive strength, splitting tensile strength and flexural strength of the composite were investigated. The results showed the density of the rock wool-incorporated specimen was highly reduced (up to 73% reduction) when the incorporation of rock wool fiber reached 15%. The oven-dry densities of the specimens for fiber contents from 2.5% to 10% are 800 kg/m3 to 2000 kg/m3, which can be classified as LWC. Permeable voids of the specimens were increased by 63% by volume with 15% of rock wool inclusion. Only a certain mix proportion fulfilled the requirement to be used as load-bearing internal walls. The correlation between compressive strength and splitting tensile strength was subsequently analyzed. Lastly, the empirical models for all properties were generated using the response surface method with R2 > 0.90. In conclusion, the selection of different mix ratios of rock wool and the water-cement ratio (w/c) for attaining better physical or mechanical properties of LWC will be presented, and hopefully serves as a sound basis for future related studies.
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spelling utm.eprints-1029412023-10-12T08:18:12Z http://eprints.utm.my/102941/ Rock wool-reinforced concrete: Physico-mechanical properties and predictive modelling Yap, Zhen Shyong A. Khalid, Nur Hafizah Haron, Zaiton Khu, Wai Hoong Yeak, Su Hoe Amran, Mugahed TA Engineering (General). Civil engineering (General) Recent developments in lightweight concrete (LWC) have led to a renewed interest in incorporating fibers in concrete. However, research on the specific application of rock wool fiber in LWC is scarce. Hence, the present study aims to investigate the physical and mechanical characteristics of LWC with the inclusion of rock wool fibers (0%–15%) in different water-cement ratios (0.4, 0.5 and 0.6). The relationships between mix proportion and the density, permeable void, water absorption, compressive strength, splitting tensile strength and flexural strength of the composite were investigated. The results showed the density of the rock wool-incorporated specimen was highly reduced (up to 73% reduction) when the incorporation of rock wool fiber reached 15%. The oven-dry densities of the specimens for fiber contents from 2.5% to 10% are 800 kg/m3 to 2000 kg/m3, which can be classified as LWC. Permeable voids of the specimens were increased by 63% by volume with 15% of rock wool inclusion. Only a certain mix proportion fulfilled the requirement to be used as load-bearing internal walls. The correlation between compressive strength and splitting tensile strength was subsequently analyzed. Lastly, the empirical models for all properties were generated using the response surface method with R2 > 0.90. In conclusion, the selection of different mix ratios of rock wool and the water-cement ratio (w/c) for attaining better physical or mechanical properties of LWC will be presented, and hopefully serves as a sound basis for future related studies. Elsevier Ltd. 2022 Article PeerReviewed application/pdf en http://eprints.utm.my/102941/1/NurHafizahKhalid2022_RockWoolReinforcedConcrete_compressed.pdf Yap, Zhen Shyong and A. Khalid, Nur Hafizah and Haron, Zaiton and Khu, Wai Hoong and Yeak, Su Hoe and Amran, Mugahed (2022) Rock wool-reinforced concrete: Physico-mechanical properties and predictive modelling. Journal of Building Engineering, 59 (105128). pp. 1-14. ISSN 2352-7102 http://dx.doi.org/10.1016/j.jobe.2022.105128 DOI: 10.1016/j.jobe.2022.105128
spellingShingle TA Engineering (General). Civil engineering (General)
Yap, Zhen Shyong
A. Khalid, Nur Hafizah
Haron, Zaiton
Khu, Wai Hoong
Yeak, Su Hoe
Amran, Mugahed
Rock wool-reinforced concrete: Physico-mechanical properties and predictive modelling
title Rock wool-reinforced concrete: Physico-mechanical properties and predictive modelling
title_full Rock wool-reinforced concrete: Physico-mechanical properties and predictive modelling
title_fullStr Rock wool-reinforced concrete: Physico-mechanical properties and predictive modelling
title_full_unstemmed Rock wool-reinforced concrete: Physico-mechanical properties and predictive modelling
title_short Rock wool-reinforced concrete: Physico-mechanical properties and predictive modelling
title_sort rock wool reinforced concrete physico mechanical properties and predictive modelling
topic TA Engineering (General). Civil engineering (General)
url http://eprints.utm.my/102941/1/NurHafizahKhalid2022_RockWoolReinforcedConcrete_compressed.pdf
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