A Unified Theoretical Model for the Monotonic and Cyclic Response of FRP Strips Glued to Concrete

The mechanical behavior of the adhesive interface between the fiber-reinforced polymer (FRP) strip and the concrete substrate often controls the response of FRP-strengthened reinforced concrete (RC) members. Plenty of studies devoted to understanding the mechanical behavior of FRP strips glued to co...

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Main Authors: Enzo Martinelli, Antonio Caggiano
Format: Article
Language:English
Published: MDPI AG 2014-02-01
Series:Polymers
Subjects:
FRP
Online Access:http://www.mdpi.com/2073-4360/6/2/370
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spelling doaj-d8ed0e340f504148b9610e1157da72d92020-11-24T21:26:07ZengMDPI AGPolymers2073-43602014-02-016237038110.3390/polym6020370polym6020370A Unified Theoretical Model for the Monotonic and Cyclic Response of FRP Strips Glued to ConcreteEnzo Martinelli0Antonio Caggiano1Department of Civil Engineering, University of Salerno, via Giovanni Paolo II, 84084 Fisciano (SA), ItalyCONICET (Argentinean National Council of Scientific and Technical Research) and University of Buenos Aires, Av. Las Heras 2214, C1127AAR CABA, ArgentinaThe mechanical behavior of the adhesive interface between the fiber-reinforced polymer (FRP) strip and the concrete substrate often controls the response of FRP-strengthened reinforced concrete (RC) members. Plenty of studies devoted to understanding the mechanical behavior of FRP strips glued to concrete are currently available in the scientific literature. However, they are mainly focused on the response under monotonic actions, which is certainly relevant in a wide class of practical applications. Conversely, few contributions are currently available to better understand the response of FRP-to-concrete interfaces under cyclic actions, such as those deriving from either seismic excitations or traffic loads. This paper presents a unified numerical approach to simulate both monotonic and cyclic behavior of FRP plates glued on quasi-brittle substrates like those made of concrete. Particularly, a damage-based approach is proposed to simulate the fracture behavior of FRP-to-concrete joints under loading/unloading cycling tests. The model is formulated within the general framework of Fracture Mechanics and is based on assuming that fracture at the FRP-to-concrete interface develops in (pure shear) mode II, as widely accepted in similar problems. Two alternative expressions of the bond-slip behavior are herein considered and their preliminary validation is finally proposed. The proposed results highlight the difference between the monotonic and the cyclic response; particularly, they show that the latter is characterized by a significantly lower force and displacement capacity.http://www.mdpi.com/2073-4360/6/2/370FRPconcretebondfracture mechanicspull-outcyclic actions
collection DOAJ
language English
format Article
sources DOAJ
author Enzo Martinelli
Antonio Caggiano
spellingShingle Enzo Martinelli
Antonio Caggiano
A Unified Theoretical Model for the Monotonic and Cyclic Response of FRP Strips Glued to Concrete
Polymers
FRP
concrete
bond
fracture mechanics
pull-out
cyclic actions
author_facet Enzo Martinelli
Antonio Caggiano
author_sort Enzo Martinelli
title A Unified Theoretical Model for the Monotonic and Cyclic Response of FRP Strips Glued to Concrete
title_short A Unified Theoretical Model for the Monotonic and Cyclic Response of FRP Strips Glued to Concrete
title_full A Unified Theoretical Model for the Monotonic and Cyclic Response of FRP Strips Glued to Concrete
title_fullStr A Unified Theoretical Model for the Monotonic and Cyclic Response of FRP Strips Glued to Concrete
title_full_unstemmed A Unified Theoretical Model for the Monotonic and Cyclic Response of FRP Strips Glued to Concrete
title_sort unified theoretical model for the monotonic and cyclic response of frp strips glued to concrete
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2014-02-01
description The mechanical behavior of the adhesive interface between the fiber-reinforced polymer (FRP) strip and the concrete substrate often controls the response of FRP-strengthened reinforced concrete (RC) members. Plenty of studies devoted to understanding the mechanical behavior of FRP strips glued to concrete are currently available in the scientific literature. However, they are mainly focused on the response under monotonic actions, which is certainly relevant in a wide class of practical applications. Conversely, few contributions are currently available to better understand the response of FRP-to-concrete interfaces under cyclic actions, such as those deriving from either seismic excitations or traffic loads. This paper presents a unified numerical approach to simulate both monotonic and cyclic behavior of FRP plates glued on quasi-brittle substrates like those made of concrete. Particularly, a damage-based approach is proposed to simulate the fracture behavior of FRP-to-concrete joints under loading/unloading cycling tests. The model is formulated within the general framework of Fracture Mechanics and is based on assuming that fracture at the FRP-to-concrete interface develops in (pure shear) mode II, as widely accepted in similar problems. Two alternative expressions of the bond-slip behavior are herein considered and their preliminary validation is finally proposed. The proposed results highlight the difference between the monotonic and the cyclic response; particularly, they show that the latter is characterized by a significantly lower force and displacement capacity.
topic FRP
concrete
bond
fracture mechanics
pull-out
cyclic actions
url http://www.mdpi.com/2073-4360/6/2/370
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