To read this content please select one of the options below:

Nonlinear analysis of RC beams using a hybrid shear-flexural fibre beam model

Denise Ferreira (Department of Construction Engineering, Universitat Politècnica de Catalunya – Barcelona TECH, Barcelona, Spain)
Jesús Bairán (Department of Construction Engineering, Universitat Politècnica de Catalunya – Barcelona TECH, Barcelona, Spain)
Antonio Marí (Department of Construction Engineering, Universitat Politècnica de Catalunya – Barcelona TECH, Barcelona, Spain)
Rui Faria (Department of Civil Engineering, LABEST – Laboratory for the Concrete Technology and Structural Behaviour, Faculdade de Engenharia da Universidade do Porto, Porto, Portugal)

Engineering Computations

ISSN: 0264-4401

Article publication date: 30 September 2014

354

Abstract

Purpose

A nonlinear finite element (FE) beam-column model for the analysis of reinforced concrete (RC) frames with due account of shear is presented in this paper. The model is an expansion of the traditional flexural fibre beam formulations to cases where multiaxial behaviour exists, being an alternative to plane and solid FE models for the nonlinear analysis of entire frame structures. The paper aims to discuss these issues.

Design/methodology/approach

Shear is taken into account at different levels of the numerical model: at the material level RC is simulated through a smeared cracked approach with rotating cracks; at the fibre level, an iterative procedure guarantees equilibrium between concrete and transversal reinforcement, allowing to compute the biaxial stress-strain state of each fibre; at the section level, a uniform shear stress pattern is assumed in order to estimate the internal shear stress-strain distribution; and at the element level, the Timoshenko beam theory takes into account an average rotation due to shear.

Findings

The proposed model is validated through experimental tests available in the literature, as well as through an experimental campaign carried out by the authors. The results on the response of RC elements critical to shear include displacements, strains and crack patterns and show the capabilities of the model to efficiently deal with shear effects in beam elements.

Originality/value

A formulation for the nonlinear shear-bending interaction based on the fixed stress approach is implemented in a fibre beam model. Shear effects are accurately accounted during all the nonlinear path of the structure in a computationally efficient manner.

Keywords

Acknowledgements

This work has been developed in the ambit of the Research Project “Assessment of deteriorated, repaired and strengthened structures: theoretical model and experimental verification” (BIA2009-11764), financed by the Spanish Ministry of Science and Innovation. The shear tests carried out at UPC were financed by the Spanish Association of Cement and its Applications (IECA). Funding provided by the Portuguese Foundation for Science and Technology (FCT) to the first author through the PhD grant SFRH/BD/43232/2008, and to the research unit LABEST, is also gratefully acknowledged.

Citation

Ferreira, D., Bairán, J., Marí, A. and Faria, R. (2014), "Nonlinear analysis of RC beams using a hybrid shear-flexural fibre beam model", Engineering Computations, Vol. 31 No. 7, pp. 1444-1483. https://doi.org/10.1108/EC-04-2013-0114

Publisher

:

Emerald Group Publishing Limited

Copyright © 2014, Emerald Group Publishing Limited

Related articles