Structural Engineering and Mechanics

Volume 81, Number 3, 2022, pages 349-365

DOI: 10.12989/sem.2022.81.3.349

Curvature-based analysis of concrete beams reinforced with steel bars and fibres

Gintaris Kaklauskas, Aleksandr Sokolov, Ashkan Shakeri, Pui-Lam Ng and Joaquim A.O. Barros

Abstract

Steel fibre-reinforced concrete (SFRC) is an emerging class of composite for construction. However, a reliable method to assess the flexural behaviour of SFRC structural member is in lack. An analytical technique is proposed for determining the moment-curvature response of concrete beams reinforced with steel fibres and longitudinal bars (R/SFRC members). The behaviour of the tensile zone of such members is highly complex due to the interaction between the residual (tension softening) stresses of SFRC and the tension stiffening stresses. The current study suggests a transparent and mechanically sound method to combine these two stress concepts. Tension stiffening is modelled by the reinforcement-related approach assuming that the corresponding stresses act in the area of tensile reinforcement. The effect is quantified based on the analogy between the R/SFRC member and the equivalent RC member having identical geometry and materials except fibres. It is assumed that the resultant tension stiffening force for the R/SFRC member can be calculated as for the equivalent RC member providing that the reinforcement strain in the cracked section of these members is the same. The resultant tension stiffening force can be defined from the moment-curvature relation of the equivalent RC member using an inverse technique. The residual stress is calculated using an existing model that eliminates the need for dedicated mechanical testing. The proposed analytical technique was validated against test data of R/SFRC beams and slabs.

Key Words

deformation; moment-curvature; steel fibre-reinforced concrete; tension stiffening

Address

Gintaris Kaklauskas: Department of Reinforced Concrete Structures and Geotechnics, Vilnius Gediminas Technical University, Sauletekio av. 11, 10223 Vilnius, Lithuania Aleksandr Sokolov: Laboratory of Innovative Building Structures, Vilnius Gediminas Technical University, Sauletekio av. 11, 10223 Vilnius, Lithuania Ashkan Shakeri: Department of Reinforced Concrete Structures and Geotechnics, Vilnius Gediminas Technical University, Sauletekio av. 11, 10223 Vilnius, Lithuania Pui-Lam Ng: Institute of Building Materials, Vilnius Gediminas Technical University, Linkmenų g. 28, 08217 Vilnius, Lithuania; Department of Civil Engineering, The University of Hong Kong, Pokfulan 999077 Hong Kong, China Joaquim A.O. Barros: Institute for Sustainability and Innovation in Structural Engineering, University of Minho, Campus de Azurém 4800-058 Guimarães, Portugal; Institute of Science and Innovation for Bio-Sustainability, University of Minho, Campus de Azurém 4804-533 Guimarães, Portugal