Article ID Journal Published Year Pages File Type
252869 Composite Structures 2011 9 Pages PDF
Abstract

External bonding of FRP plates or sheets has become a popular method for strengthening reinforced concrete structures. Stresses along the FRP-concrete interface are critical to the effectiveness of this technique because high stress concentration along the FRP-concrete interface can lead to the FRP debonding from the concrete beam. Although the short-term stress distribution along the FRP-concrete interface has been studied extensively, very few studies have been conducted on the long-term stress distribution, which closely simulates the behavior of the structure during the service-life. In this study, we develop a viscoelastic solution for the long-term interface stress distribution in a FRP plate strengthened reinforced concrete beam. In this solution, the RC beam and the FRP plate are modeled as elastic materials; while the adhesive layer is modeled as a viscoelastic material using the Standard Linear Solid model. Closed-form expressions of the interface stresses and deflection of the beam are obtained using Laplace transform and calculated using the Zakian’s numerical method. The validation of this viscoelastic solution is verified by finite element analysis using a subroutine UMAT based on the Standard Linear Solid model.

► A viscoelastic solution for interface stress in a FRP plate strengthened RC beam is developed. ► Standard Linear Solid model is used to model the adhesive layer. ► The prestressed force in the FRP plate is also considered in this solution. ► The redistributions of interfacial stresses, forces and creep deflection of the beam are obtained.

Related Topics
Physical Sciences and Engineering Engineering Civil and Structural Engineering
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