Load-bearing capacity of flexural reinforced concrete members strengthened with fiber-reinforced polymer in fracture stage

The article examines the behavior of flexural reinforced concrete members, strengthened with fiber-reinforced polymers (FRP), under the ultimate loading conditions (in fracture stage). One of the main problems of such elements is sudden and brittle failure mode caused by FRP debonding. The method fo...

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Main Authors: Justas Slaitas, Juozas Valivonis, Linas Juknevičius, Remigijus Šalna
Format: Article
Language:English
Published: SAGE Publishing 2018-04-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814018772942
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spelling doaj-26675a579a274edfbd5c0b5cc36d855b2020-11-25T02:48:48ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402018-04-011010.1177/1687814018772942Load-bearing capacity of flexural reinforced concrete members strengthened with fiber-reinforced polymer in fracture stageJustas SlaitasJuozas ValivonisLinas JuknevičiusRemigijus ŠalnaThe article examines the behavior of flexural reinforced concrete members, strengthened with fiber-reinforced polymers (FRP), under the ultimate loading conditions (in fracture stage). One of the main problems of such elements is sudden and brittle failure mode caused by FRP debonding. The method for the calculation of load-bearing capacity of the normal section of flexural reinforced concrete members, strengthened with various types of FRP, is proposed in this article. This method is based on the theory of fracture mechanics of solids. The reduction of overall member stiffness due to the slip between concrete and FRP is estimated by reducing the FRP stress according to the built-up bars theory. Such reduction allows the prediction of load-bearing capacity of strengthened members sufficiently precisely even for sudden and brittle FRP debonding failure mode. The numerical results are compared with experimental ones. In total, 55 reinforced concrete beams, strengthened with externally bonded or near surface mounted carbon fiber-reinforced polymer and glass fiber-reinforced polymer sheets, plates, strips, and rods, are analyzed in this comparison. Experimental results were collected from various scientific publications. A focus is made on the depth of the crack in critical normal section and FRP strain–stress relationship.https://doi.org/10.1177/1687814018772942
collection DOAJ
language English
format Article
sources DOAJ
author Justas Slaitas
Juozas Valivonis
Linas Juknevičius
Remigijus Šalna
spellingShingle Justas Slaitas
Juozas Valivonis
Linas Juknevičius
Remigijus Šalna
Load-bearing capacity of flexural reinforced concrete members strengthened with fiber-reinforced polymer in fracture stage
Advances in Mechanical Engineering
author_facet Justas Slaitas
Juozas Valivonis
Linas Juknevičius
Remigijus Šalna
author_sort Justas Slaitas
title Load-bearing capacity of flexural reinforced concrete members strengthened with fiber-reinforced polymer in fracture stage
title_short Load-bearing capacity of flexural reinforced concrete members strengthened with fiber-reinforced polymer in fracture stage
title_full Load-bearing capacity of flexural reinforced concrete members strengthened with fiber-reinforced polymer in fracture stage
title_fullStr Load-bearing capacity of flexural reinforced concrete members strengthened with fiber-reinforced polymer in fracture stage
title_full_unstemmed Load-bearing capacity of flexural reinforced concrete members strengthened with fiber-reinforced polymer in fracture stage
title_sort load-bearing capacity of flexural reinforced concrete members strengthened with fiber-reinforced polymer in fracture stage
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2018-04-01
description The article examines the behavior of flexural reinforced concrete members, strengthened with fiber-reinforced polymers (FRP), under the ultimate loading conditions (in fracture stage). One of the main problems of such elements is sudden and brittle failure mode caused by FRP debonding. The method for the calculation of load-bearing capacity of the normal section of flexural reinforced concrete members, strengthened with various types of FRP, is proposed in this article. This method is based on the theory of fracture mechanics of solids. The reduction of overall member stiffness due to the slip between concrete and FRP is estimated by reducing the FRP stress according to the built-up bars theory. Such reduction allows the prediction of load-bearing capacity of strengthened members sufficiently precisely even for sudden and brittle FRP debonding failure mode. The numerical results are compared with experimental ones. In total, 55 reinforced concrete beams, strengthened with externally bonded or near surface mounted carbon fiber-reinforced polymer and glass fiber-reinforced polymer sheets, plates, strips, and rods, are analyzed in this comparison. Experimental results were collected from various scientific publications. A focus is made on the depth of the crack in critical normal section and FRP strain–stress relationship.
url https://doi.org/10.1177/1687814018772942
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AT juozasvalivonis loadbearingcapacityofflexuralreinforcedconcretemembersstrengthenedwithfiberreinforcedpolymerinfracturestage
AT linasjuknevicius loadbearingcapacityofflexuralreinforcedconcretemembersstrengthenedwithfiberreinforcedpolymerinfracturestage
AT remigijussalna loadbearingcapacityofflexuralreinforcedconcretemembersstrengthenedwithfiberreinforcedpolymerinfracturestage
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