Fibre reinforced alkali activated composites exposed to elevated temperature
This work aims to reveal the effect of fibres on the strength and durability of alkali activated composites (AAC). AAC specimens were prepared by alkali activation of Ground granulated blast furnace slag (GGBS). Two types of fibres i.e. micro steel (~237.8µm) and polypropylene (~32.06µm) were used a...
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Format: | Article |
Language: | English |
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Khon Kaen University
2022-07-01
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Series: | Engineering and Applied Science Research |
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Online Access: | https://ph01.tci-thaijo.org/index.php/easr/article/view/246868/168530 |
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author | Chitra Shijagurumayum Nongthombam Shyamananda Singh Suresh Thokchom |
author_facet | Chitra Shijagurumayum Nongthombam Shyamananda Singh Suresh Thokchom |
author_sort | Chitra Shijagurumayum |
collection | DOAJ |
description | This work aims to reveal the effect of fibres on the strength and durability of alkali activated composites (AAC). AAC specimens were prepared by alkali activation of Ground granulated blast furnace slag (GGBS). Two types of fibres i.e. micro steel (~237.8µm) and polypropylene (~32.06µm) were used as reinforcement. The properties of fibre reinforced AAC specimens were compared with those of fibre reinforced ordinary portland cement (OPC) counterparts. AAC specimens yielded higher compressive and tensile strength than OPC specimens. Fibre reinforced specimens exhibited improved strength over those without fibres. Specimens reinforced with polypropylene fibre showed better performance in terms of water absorption, and apparent porosity. This may be attributed to the finer size of polypropylene fibres. The specimens were then exposed to elevated temperatures up to 900ºC. Compressive strength was observed to decrease after exposure to elevated temperatures in both AAC and OPC specimens. OPC specimens completely crumbled upon reaching 900ºC while AAC specimens remained intact with appearance of surface cracks. From the present study, it is concluded that fibre reinforcement leads to significant increase in strength and size of fibres controls the durability of the specimens. |
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format | Article |
id | doaj.art-77753d2d287c4df6973be36cb191dd8d |
institution | Directory Open Access Journal |
issn | 2539-6161 2539-6218 |
language | English |
last_indexed | 2024-12-12T08:58:24Z |
publishDate | 2022-07-01 |
publisher | Khon Kaen University |
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series | Engineering and Applied Science Research |
spelling | doaj.art-77753d2d287c4df6973be36cb191dd8d2022-12-22T00:29:54ZengKhon Kaen UniversityEngineering and Applied Science Research2539-61612539-62182022-07-01494593602Fibre reinforced alkali activated composites exposed to elevated temperatureChitra ShijagurumayumNongthombam Shyamananda SinghSuresh ThokchomThis work aims to reveal the effect of fibres on the strength and durability of alkali activated composites (AAC). AAC specimens were prepared by alkali activation of Ground granulated blast furnace slag (GGBS). Two types of fibres i.e. micro steel (~237.8µm) and polypropylene (~32.06µm) were used as reinforcement. The properties of fibre reinforced AAC specimens were compared with those of fibre reinforced ordinary portland cement (OPC) counterparts. AAC specimens yielded higher compressive and tensile strength than OPC specimens. Fibre reinforced specimens exhibited improved strength over those without fibres. Specimens reinforced with polypropylene fibre showed better performance in terms of water absorption, and apparent porosity. This may be attributed to the finer size of polypropylene fibres. The specimens were then exposed to elevated temperatures up to 900ºC. Compressive strength was observed to decrease after exposure to elevated temperatures in both AAC and OPC specimens. OPC specimens completely crumbled upon reaching 900ºC while AAC specimens remained intact with appearance of surface cracks. From the present study, it is concluded that fibre reinforcement leads to significant increase in strength and size of fibres controls the durability of the specimens.https://ph01.tci-thaijo.org/index.php/easr/article/view/246868/168530alkali activationcompressive strengthmicro steelpolypropylenetensile strength |
spellingShingle | Chitra Shijagurumayum Nongthombam Shyamananda Singh Suresh Thokchom Fibre reinforced alkali activated composites exposed to elevated temperature Engineering and Applied Science Research alkali activation compressive strength micro steel polypropylene tensile strength |
title | Fibre reinforced alkali activated composites exposed to elevated temperature |
title_full | Fibre reinforced alkali activated composites exposed to elevated temperature |
title_fullStr | Fibre reinforced alkali activated composites exposed to elevated temperature |
title_full_unstemmed | Fibre reinforced alkali activated composites exposed to elevated temperature |
title_short | Fibre reinforced alkali activated composites exposed to elevated temperature |
title_sort | fibre reinforced alkali activated composites exposed to elevated temperature |
topic | alkali activation compressive strength micro steel polypropylene tensile strength |
url | https://ph01.tci-thaijo.org/index.php/easr/article/view/246868/168530 |
work_keys_str_mv | AT chitrashijagurumayum fibrereinforcedalkaliactivatedcompositesexposedtoelevatedtemperature AT nongthombamshyamanandasingh fibrereinforcedalkaliactivatedcompositesexposedtoelevatedtemperature AT sureshthokchom fibrereinforcedalkaliactivatedcompositesexposedtoelevatedtemperature |