SHEAR MECHANISM AND SHEAR STRENGTH PREDICTION OF REINFORCED CONCRETE T-BEAMS
DOI:
https://doi.org/10.11113/jt.v78.8373Keywords:
Shear Resistance Mechanism, Reinforced Concrete T-beam, ACI318-08, EC2Abstract
Shear failure in reinforced concrete beams are sudden failures and should be avoided at all times. However, the shear behaviour of a reinforced concrete beam is a complex mechanism and requires in-depth study. To understand the shear mechanism, two (2) simply supported reinforced concrete T-beams, BEAM1 and BEAM2 were tested until failure subjected to a 4-point bending test. Both beams were designed to the recommendations and specifications of two (2) established design codes by ACI318-08 and Eurocode2 (EC2). The study comprises of two reinforced concrete T-beams having similar variables and parameters with longitudinal reinforcement of Ï = 2.15% and shear span-to-effective depth ratio (av/d) of 3.5. Shear reinforcement or stirrups has been added to the specimen and its spacing of stirrups has been provided with the provisions of the codes. The findings from the study indicate that ACI318-08 and EC2 design codes shows significant differences in determining its shear strength capacity Vn and concrete shear resistance Vcof the T-beams. However, both results were less conservative in its prediction when compared to the experimental results.Â
References
El-Ariss, B. 2006. Shear Mechanism in Cracked Concrete. Int. J. of Appl. Math and Mech. 2(3): 24-31.
Ahmad, S. 2002. Shear Behaviour Of High-Strength Concrete Beams Without Web Reinforcement. University of Engineering & Technology, Pakistan, 27th Conference on Our World In Concrete & Structures, 29-30 August, Singapore.
Paczkowski, P., & Nowak, A. S. 2008. Shear Resistance Of Reinforced Concrete Beams Without Web Reinforcement. Department of Civil Engineering, University of Nebraska, Lincoln, USA.
Pimanmas, A. 2007. Behavior And Failure Mode Of Reinforced Concrete Members Damaged By Pre-Cracking. Songklanakarin J. Sci. Technol. 29(4).
Piyamahant, S. 2002. Shear Behavior of Reinforced Concrete Beams with a Small Amount Web Reinforcement. Thesis of Master Degree, Department of Infrastructure System Engineering, Kochi University of Technology, Kochi, Japan.
Song, J., & Kang, W. 2010. Probabilistic Shear Strength Models For Reinforced Concrete Beams Without Shear Reinforcement. Structural Engineering and Mechanics. 34(1): 15-38.
Ahmed, S. H., Rafeeqi, S. F. & Fareed S. 2013. Shear Predictions of Eurocode EC2. American Journal of Civil Engineering and Architecture. 1(2): 43-46.
Jawad, A. A. H. 2006. Strength Design Requirements of ACI-318M-02 Code BS8110, and EuroCode2 for Structural Concrete: A Comparative Study. Journal of Engineering and Development. 10(1).
ACI 318-08. 2008. An ACI Standard, Building Code Requirements for Structural Concrete (ACI 318-08) and Commentary.
Eurocode 2. 2005. Design of Concrete Structures Part 2: Concrete Bridges, Design and Detailing Rules, BS EN1992-2:2005.
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