Computers and Concrete
Volume 20, Number 4, 2017, pages 439-448
DOI: 10.12989/cac.2017.20.4.439
Side-NSM composite technique for flexural strengthening of RC beams
Md. Akter Hosen, Mohd Zamin Jumaat, A. B. M. Saiful Islam, Md. Abdus Salam and Kim Hung Mo
Abstract
Reinforced concrete (RC) infrastructures often require strengthening due to error in design, degradation of materials properties after prolong utilization and increases load carrying capacity persuaded by new use of the structures. For this purpose, a newly proposed Side Near Surface Mounted (SNSM) composite technique was used for flexural strengthening of RC beam specimens. Analytical and non-linear finite element modeling (FEM) using ABAQUS were performed to predict the flexural performance of RC specimens strengthened with S-NSM using steel bars as a strengthening reinforcement. RC beams with various SNSM reinforcement ratios were tested for flexural performance using four-point bending under monotonic loading condition. Results showed significantly increase the yield and ultimate strengths up to 140% and 144% respectively and improved failure modes. The flexural response, such as failure load, mode of failure, yield load, ultimate load, deflection, strain, cracks characteristic and ductility of the beams were compared with those predicted results. The strengthened RC beam specimens showed good agreement of predicted flexural behavior with the experimental outcomes.
Key Words
SNSM composite; numerical simulation; analytical model; ductility; strengthening
Address
Md. Akter Hosen:
1) Department of Civil Engineering, Faculty of Engineering, University of Malaya, 50603, Kuala Lumpur, Malaysia
2) Department of Civil Engineering, Dhaka University of Engineering & Technology (DUET), Gazipur-1700, Bangladesh
Mohd Zamin Jumaat and Kim Hung Mo: Department of Civil Engineering, Faculty of Engineering, University of Malaya, 50603, Kuala Lumpur, Malaysia
A. B. M. Saiful Islam: Department of Construction Engineering, College of Engineering, University of Dammam, 31451 Dammam, Saudi Arabia
Md. Abdus Salam: Department of Civil Engineering, Dhaka University of Engineering & Technology (DUET), Gazipur-1700, Bangladesh