Structural Behaviour of Self Consolidating Steel Fiber Reinforced Concrete Beams

When subjected to a combination of moment and shear force, a reinforced concrete (RC) beam with either little or no transverse reinforcement can fail in shear before reaching its full flexural strength. This type of failure is sudden in nature and usually disastrous because it does not give sufficie...

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Bibliographic Details
Main Author: Cohen, Michael I.
Other Authors: Aoude, Hassan
Language:en
Published: Université d'Ottawa / University of Ottawa 2012
Subjects:
SCC
Online Access:http://hdl.handle.net/10393/23101
http://dx.doi.org/10.20381/ruor-5277
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spelling ndltd-uottawa.ca-oai-ruor.uottawa.ca-10393-231012018-01-05T19:01:16Z Structural Behaviour of Self Consolidating Steel Fiber Reinforced Concrete Beams Cohen, Michael I. Aoude, Hassan Steel Fiber Self Consolidating Concrete Mustafa Mohammed-Saeed SFRC SCFRC Steel Fiber Reinforced Concrete Beams SCC SFRC Beams SCFRC Beams Shear Behaviour of SFRC Beams Slump Flow Test Fiber Pullout Strength Mohammed-Saeed Mustafa Michael Cohen Shear Behaviour of SCFRC Beams When subjected to a combination of moment and shear force, a reinforced concrete (RC) beam with either little or no transverse reinforcement can fail in shear before reaching its full flexural strength. This type of failure is sudden in nature and usually disastrous because it does not give sufficient warning prior to collapse. To prevent this type of shear failure, reinforced concrete beams are traditionally reinforced with stirrups. However, the use of stirrups is not always cost effective since it increases labor costs, and can make casting concrete difficult in situations where closely-spaced stirrups are required. The use of steel fiber reinforced concrete (SFRC) could be considered as a potential alternative to the use of traditional shear reinforcement. Concrete is very weak and brittle in tension, SFRC transforms this behaviour and improves the diagonal tension capacity of concrete and thus can result in significant enhancements in shear capacity. However, one of the drawbacks associated with SFRC is that the addition of fibers to a regular concrete mix can cause problems in workability. The use of self-consolidating concrete (SCC) is an innovative solution to this problem and can result in improved workability when fibers are added to the mix. The thesis presents the experimental results from tests on twelve slender self-consolidating fiber reinforced concrete (SCFRC) beams tested under four-point loading. The results demonstrate the combined use of SCC and steel fibers can improve the shear resistance of reinforced concrete beams, enhance crack control and can promote flexural ductility. Despite extensive research, there is a lack of accurate and reliable design guidelines for the use of SFRC in beams. This study presents a rational model which can accurately predict the shear resistance of steel fiber reinforced concrete beams. The thesis also proposes a safe and reliable equation which can be used for the shear design of SFRC beams. 2012-07-26T07:36:33Z 2012-07-26T07:36:33Z 2012 2012 Thesis http://hdl.handle.net/10393/23101 http://dx.doi.org/10.20381/ruor-5277 en Université d'Ottawa / University of Ottawa
collection NDLTD
language en
sources NDLTD
topic Steel Fiber
Self Consolidating Concrete
Mustafa Mohammed-Saeed
SFRC
SCFRC
Steel Fiber Reinforced Concrete Beams
SCC
SFRC Beams
SCFRC Beams
Shear Behaviour of SFRC Beams
Slump Flow Test
Fiber Pullout Strength
Mohammed-Saeed
Mustafa
Michael
Cohen
Shear Behaviour of SCFRC Beams
spellingShingle Steel Fiber
Self Consolidating Concrete
Mustafa Mohammed-Saeed
SFRC
SCFRC
Steel Fiber Reinforced Concrete Beams
SCC
SFRC Beams
SCFRC Beams
Shear Behaviour of SFRC Beams
Slump Flow Test
Fiber Pullout Strength
Mohammed-Saeed
Mustafa
Michael
Cohen
Shear Behaviour of SCFRC Beams
Cohen, Michael I.
Structural Behaviour of Self Consolidating Steel Fiber Reinforced Concrete Beams
description When subjected to a combination of moment and shear force, a reinforced concrete (RC) beam with either little or no transverse reinforcement can fail in shear before reaching its full flexural strength. This type of failure is sudden in nature and usually disastrous because it does not give sufficient warning prior to collapse. To prevent this type of shear failure, reinforced concrete beams are traditionally reinforced with stirrups. However, the use of stirrups is not always cost effective since it increases labor costs, and can make casting concrete difficult in situations where closely-spaced stirrups are required. The use of steel fiber reinforced concrete (SFRC) could be considered as a potential alternative to the use of traditional shear reinforcement. Concrete is very weak and brittle in tension, SFRC transforms this behaviour and improves the diagonal tension capacity of concrete and thus can result in significant enhancements in shear capacity. However, one of the drawbacks associated with SFRC is that the addition of fibers to a regular concrete mix can cause problems in workability. The use of self-consolidating concrete (SCC) is an innovative solution to this problem and can result in improved workability when fibers are added to the mix. The thesis presents the experimental results from tests on twelve slender self-consolidating fiber reinforced concrete (SCFRC) beams tested under four-point loading. The results demonstrate the combined use of SCC and steel fibers can improve the shear resistance of reinforced concrete beams, enhance crack control and can promote flexural ductility. Despite extensive research, there is a lack of accurate and reliable design guidelines for the use of SFRC in beams. This study presents a rational model which can accurately predict the shear resistance of steel fiber reinforced concrete beams. The thesis also proposes a safe and reliable equation which can be used for the shear design of SFRC beams.
author2 Aoude, Hassan
author_facet Aoude, Hassan
Cohen, Michael I.
author Cohen, Michael I.
author_sort Cohen, Michael I.
title Structural Behaviour of Self Consolidating Steel Fiber Reinforced Concrete Beams
title_short Structural Behaviour of Self Consolidating Steel Fiber Reinforced Concrete Beams
title_full Structural Behaviour of Self Consolidating Steel Fiber Reinforced Concrete Beams
title_fullStr Structural Behaviour of Self Consolidating Steel Fiber Reinforced Concrete Beams
title_full_unstemmed Structural Behaviour of Self Consolidating Steel Fiber Reinforced Concrete Beams
title_sort structural behaviour of self consolidating steel fiber reinforced concrete beams
publisher Université d'Ottawa / University of Ottawa
publishDate 2012
url http://hdl.handle.net/10393/23101
http://dx.doi.org/10.20381/ruor-5277
work_keys_str_mv AT cohenmichaeli structuralbehaviourofselfconsolidatingsteelfiberreinforcedconcretebeams
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