Investigation of Circular Hollow Concrete Columns Reinforced with GFRP Bars and Spirals

Author:

Ahmad Afaq1ORCID,Bahrami Alireza2ORCID,Alajarmeh Omar3ORCID,Chairman Nida4,Yaqub Muhammad1

Affiliation:

1. Department of Civil Engineering, University of Engineering and Technology, Taxila 47080, Pakistan

2. Department of Building Engineering, Energy Systems and Sustainability Science, Faculty of Engineering and Sustainable Development, University of Gävle, 801 76 Gävle, Sweden

3. Centre for Future Materials (CFM), School of Civil Engineering and Surveying, University of Southern Queensland, Toowoomba 4350, Australia

4. Department of Civil and Architectural Engineering, University of Westminster, London W1B 2HW, UK

Abstract

Glass fiber-reinforced polymer (GFRP) reinforcements are useful alternatives to traditional steel bars in concrete structures, particularly in vertical structural elements such as columns, as they are less prone to corrosion, and impart increasing strength and endurance of buildings. There is limited research on the finite element analysis (FEA) of the structural behavior of hollow glass fiber-reinforced polymer reinforced concrete (GFRPRC) columns. The hollow portion can be used for the service duct and for reducing the self-weight of the members. Numerical analysis of the compressive response of circular hollow concrete columns reinforced with GFRP bars and spirals is performed in this study. This article aims to investigate the axial behavior of hollow GFRP concrete columns and compare it with that of solid steel reinforced concrete (RC) columns as well as hollow steel RC columns. The Abaqus software is used to construct finite element models. After calibration of modeling using an experimental test result as a control model, a parametric study is conducted. The columns with the same geometry, loading, and boundary conditions are analyzed in the parametric study. It is resulted that the hollow GFRP concrete columns provide a greater confinement effect than the solid steel RC columns. The average variation in the ultimate axial load-carrying capacities of the experimental results, from that of the FEA values, is noted to be only 3.87%, while the average difference in the corresponding deformations is 7.08%. Moreover, the hollow GFRP concrete columns possess greater axial load and deformation capacities compared with the solid steel RC columns.

Publisher

MDPI AG

Subject

Building and Construction,Civil and Structural Engineering,Architecture

Reference49 articles.

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2. Mechanical properties of glass fibre reinforced polymer based on resin from recycled plastic;Ephraim;IJSER,2015

3. ACI Committee (2015). Guide for the Design and Construction of Structural Concrete Reinforced with Fiber-Reinforced Polymer (FRP) Bars (ACI 440. 1R-15), American Concrete Institute.

4. Replacement of steel rebars by GFRP rebars in the concrete structures;Jabbar;Karbala Int. J. Mod. Sci.,2018

5. Axial capacity of circular concrete columns reinforced with GFRP bars and spirals;Afifi;J. Compos. Constr.,2014

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