Behavior of hybrid high-strength fiber reinforced concrete slab-column connections under the effect of high tempera

Concrete can be modified to perform in a more ductile form by the addition of randomly distributed discrete fibers in the concrete matrix. The combined effect of the addition of two types of fibers (steel fiber and polypropylene fiber with different percentages) to concrete matrix, which is called h...

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Main Authors: Reham H. Ahmed, Ghada D. Abdel-Hameed, Ahmed M. Farahat
Format: Article
Language:English
Published: Taylor & Francis Group 2016-04-01
Series:HBRC Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1687404816000080
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spelling doaj-1f623f56020943c488b49203921372962020-11-25T01:45:01ZengTaylor & Francis GroupHBRC Journal1687-40482016-04-01121546210.1016/j.hbrcj.2016.01.007Behavior of hybrid high-strength fiber reinforced concrete slab-column connections under the effect of high temperaReham H. Ahmed0Ghada D. Abdel-Hameed1Ahmed M. Farahat2Reinforced Concrete Research Institute, Housing and Building National Research Center, Giza, EgyptMaterials Building and Quality Control Institute, Housing and Building National Research Center, Giza, EgyptStructural Engineering Dept., Cairo University, Giza, EgyptConcrete can be modified to perform in a more ductile form by the addition of randomly distributed discrete fibers in the concrete matrix. The combined effect of the addition of two types of fibers (steel fiber and polypropylene fiber with different percentages) to concrete matrix, which is called hybrid effect is currently under investigation worldwide. The current research work presents the conducted experimental program to observe the behavior of hybrid high strength reinforced concrete slab-column connections under the effect of high temperature. For this purpose, ten slab-column connections were casted and tested. The experimental program was designed to investigate the effect of different variables such as concrete mixture, column location and temperature fighting system. All specimens were exposed to a temperature of 500 °C for duration of two hours. To observe the effect of each variable, specimens were divided into four groups according to the studied parameters. The test results revealed that using hybrid high strength concrete HFHSC produced more strength in punching failure compared with high strength concrete HSC when exposed to elevated temperature. Fighting by air had higher initial crack load compared with that for without fighting and fighting by water. On the other hand, fighting by water decreased the ultimate load.http://www.sciencedirect.com/science/article/pii/S1687404816000080Elevated temperatureHybrid concretePolypropylene fibersCrackingSteel fibers
collection DOAJ
language English
format Article
sources DOAJ
author Reham H. Ahmed
Ghada D. Abdel-Hameed
Ahmed M. Farahat
spellingShingle Reham H. Ahmed
Ghada D. Abdel-Hameed
Ahmed M. Farahat
Behavior of hybrid high-strength fiber reinforced concrete slab-column connections under the effect of high tempera
HBRC Journal
Elevated temperature
Hybrid concrete
Polypropylene fibers
Cracking
Steel fibers
author_facet Reham H. Ahmed
Ghada D. Abdel-Hameed
Ahmed M. Farahat
author_sort Reham H. Ahmed
title Behavior of hybrid high-strength fiber reinforced concrete slab-column connections under the effect of high tempera
title_short Behavior of hybrid high-strength fiber reinforced concrete slab-column connections under the effect of high tempera
title_full Behavior of hybrid high-strength fiber reinforced concrete slab-column connections under the effect of high tempera
title_fullStr Behavior of hybrid high-strength fiber reinforced concrete slab-column connections under the effect of high tempera
title_full_unstemmed Behavior of hybrid high-strength fiber reinforced concrete slab-column connections under the effect of high tempera
title_sort behavior of hybrid high-strength fiber reinforced concrete slab-column connections under the effect of high tempera
publisher Taylor & Francis Group
series HBRC Journal
issn 1687-4048
publishDate 2016-04-01
description Concrete can be modified to perform in a more ductile form by the addition of randomly distributed discrete fibers in the concrete matrix. The combined effect of the addition of two types of fibers (steel fiber and polypropylene fiber with different percentages) to concrete matrix, which is called hybrid effect is currently under investigation worldwide. The current research work presents the conducted experimental program to observe the behavior of hybrid high strength reinforced concrete slab-column connections under the effect of high temperature. For this purpose, ten slab-column connections were casted and tested. The experimental program was designed to investigate the effect of different variables such as concrete mixture, column location and temperature fighting system. All specimens were exposed to a temperature of 500 °C for duration of two hours. To observe the effect of each variable, specimens were divided into four groups according to the studied parameters. The test results revealed that using hybrid high strength concrete HFHSC produced more strength in punching failure compared with high strength concrete HSC when exposed to elevated temperature. Fighting by air had higher initial crack load compared with that for without fighting and fighting by water. On the other hand, fighting by water decreased the ultimate load.
topic Elevated temperature
Hybrid concrete
Polypropylene fibers
Cracking
Steel fibers
url http://www.sciencedirect.com/science/article/pii/S1687404816000080
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