Elevated temperature resistance of ultra-highperformance fibre-reinforced cementitious composites

Elevated temperatures, specifically in the event of fire, are likely to cause extreme deterioration in fibre-reinforced polymer (FRP) strengthened reinforced concrete (RC) structures. Various types of high-performance cementitious composites (HPCC) have been explored for the protection of RC structu...

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التفاصيل البيبلوغرافية
الحاوية / القاعدة:Magazine of Concrete Research
المؤلف الرئيسي: 2-s2.0-84939538559
التنسيق: مقال
اللغة:English
منشور في: Thomas Telford Services Ltd 2015
الوصول للمادة أونلاين:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84939538559&doi=10.1680%2fmacr.14.00134&partnerID=40&md5=fb7a7a3b464f2fe8f4120d0af08558d3
id Sobia A.Q.; Azmi I.; Hamidah M.S.; Rafeeqi S.F.A.
spelling Sobia A.Q.; Azmi I.; Hamidah M.S.; Rafeeqi S.F.A.
2-s2.0-84939538559
Elevated temperature resistance of ultra-highperformance fibre-reinforced cementitious composites
2015
Magazine of Concrete Research
67
17
10.1680/macr.14.00134
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84939538559&doi=10.1680%2fmacr.14.00134&partnerID=40&md5=fb7a7a3b464f2fe8f4120d0af08558d3
Elevated temperatures, specifically in the event of fire, are likely to cause extreme deterioration in fibre-reinforced polymer (FRP) strengthened reinforced concrete (RC) structures. Various types of high-performance cementitious composites (HPCC) have been explored for the protection of RC structural members against elevated temperature, but there is inadequate information in this regard for ultra-high performance fibre-reinforced cementitious composites (UHPFRCC) containing high-alumina cement (HAC) and ground granulated blast furnace slag (GGBS) in conjunction with hybrid fibres - a prospective fire-resistant UHPFRCC for structural members. In this study, the change in mechanical strength of UHPFRCC was examined before and after heat treatment, followed by thermal and microstructural analysis. Besides the control sample, three other samples containing up to 1.5% of basalt fibres, and 1 kg/m3 of polypropylene fibres, were prepared and tested. Another mix was also prepared with only 1 kg/m3 of polypropylene fibres. Each sample was heated to 400, 700 and 10008C. Results showed that the use of hybrid fibres significantly improved the room temperature mechanical strengths of UHPFRCC, which were found to be 80 MPa and 14.3 MPa, respectively. However, the optimum residual compressive and flexural strength was attained by UHPFRCC with only PP fibres and hybrid fibres, respectively. ICE Publishing: All rights reserved.
Thomas Telford Services Ltd
249831
English
Article

author 2-s2.0-84939538559
spellingShingle 2-s2.0-84939538559
Elevated temperature resistance of ultra-highperformance fibre-reinforced cementitious composites
author_facet 2-s2.0-84939538559
author_sort 2-s2.0-84939538559
title Elevated temperature resistance of ultra-highperformance fibre-reinforced cementitious composites
title_short Elevated temperature resistance of ultra-highperformance fibre-reinforced cementitious composites
title_full Elevated temperature resistance of ultra-highperformance fibre-reinforced cementitious composites
title_fullStr Elevated temperature resistance of ultra-highperformance fibre-reinforced cementitious composites
title_full_unstemmed Elevated temperature resistance of ultra-highperformance fibre-reinforced cementitious composites
title_sort Elevated temperature resistance of ultra-highperformance fibre-reinforced cementitious composites
publishDate 2015
container_title Magazine of Concrete Research
container_volume 67
container_issue 17
doi_str_mv 10.1680/macr.14.00134
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84939538559&doi=10.1680%2fmacr.14.00134&partnerID=40&md5=fb7a7a3b464f2fe8f4120d0af08558d3
description Elevated temperatures, specifically in the event of fire, are likely to cause extreme deterioration in fibre-reinforced polymer (FRP) strengthened reinforced concrete (RC) structures. Various types of high-performance cementitious composites (HPCC) have been explored for the protection of RC structural members against elevated temperature, but there is inadequate information in this regard for ultra-high performance fibre-reinforced cementitious composites (UHPFRCC) containing high-alumina cement (HAC) and ground granulated blast furnace slag (GGBS) in conjunction with hybrid fibres - a prospective fire-resistant UHPFRCC for structural members. In this study, the change in mechanical strength of UHPFRCC was examined before and after heat treatment, followed by thermal and microstructural analysis. Besides the control sample, three other samples containing up to 1.5% of basalt fibres, and 1 kg/m3 of polypropylene fibres, were prepared and tested. Another mix was also prepared with only 1 kg/m3 of polypropylene fibres. Each sample was heated to 400, 700 and 10008C. Results showed that the use of hybrid fibres significantly improved the room temperature mechanical strengths of UHPFRCC, which were found to be 80 MPa and 14.3 MPa, respectively. However, the optimum residual compressive and flexural strength was attained by UHPFRCC with only PP fibres and hybrid fibres, respectively. ICE Publishing: All rights reserved.
publisher Thomas Telford Services Ltd
issn 249831
language English
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