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Flexural behavior of RC beams reinforced by ECC layer and steel plate: numerical simulation

Long Liu (School of Civil Engineering and Transportation, Northeast Forestry University, Harbin, China) (Anyang Engineering Research Center of High Ductility Concrete Structure, Anyang Institute of Technology, Anyang, China)
Lifeng Wang (School of Civil Engineering and Transportation, Northeast Forestry University, Harbin, China)
Ziwang Xiao (School of Civil Engineering and Transportation, Northeast Forestry University, Harbin, China)

International Journal of Structural Integrity

ISSN: 1757-9864

Article publication date: 9 April 2024

18

Abstract

Purpose

The combination of an Engineered Cementitious Composite (ECC) layer and steel plate to reinforce RC beams (ESRB) is a new strengthening method. The ESRB was proposed based on the steel plate at the bottom of RC beams, aiming to solve the problem of over-reinforced RC beams and improve the bearing capacity of RC beams without affecting their ductility.

Design/methodology/approach

In this paper, the finite element model of ESRB was established by ABAQUS. The results were compared with the experimental results of ESRB in previous studies and the reliability of the finite element model was verified. On this basis, parameters such as the width of the steel plate, thickness of the ECC layer, damage degree of the original beam and cross-sectional area of longitudinal tensile rebar were analyzed by the verified finite element model. Based on the load–deflection curve of ESRB, ESRB was discussed in terms of ultimate bearing capacity and ductility.

Findings

The results demonstrate that when the width of the steel plate increases, the ultimate load of ESRB increases to 133.22 kN by 11.58% as well as the ductility index increases to 2.39. With the increase of the damage degree of the original beam, the ultimate load of ESRB decreases by 23.7%–91.09 kN and the ductility index decreases to 1.90. With the enhancement of the cross-sectional area of longitudinal tensile rebar, the ultimate bearing capacity of ESRB increases to 126.75 kN by 6.2% and the ductility index elevates to 2.30. Finally, a calculation model for predicting the flexural capacity of ESRB is proposed. The calculated results of the model are in line with the experimental results.

Originality/value

Based on the comparative analysis of the test results and numerical simulation results of 11 test beams, this investigation verified the accuracy and reliability of the finite element simulation from the aspects of load–deflection curve, characteristic load and failure mode. Furthermore, based on load–deflection curve, the effects of steel plate width, ECC layer thickness, damage degree of the original beam and cross-sectional area of longitudinal tensile rebar on the ultimate bearing capacity and ductility of ESRB were discussed. Finally, a simplified method was put forward to further verify the effectiveness of ESRB through analytical calculation.

Keywords

Acknowledgements

This study is supported by three key funds: (1) The Key Research and Development Program of Heilongjiang Province, China (JD22A012); (2) Science and Technology Project of Department of Transportation of Heilongjiang Province, China (HJK2023B014-4); (3) Educational Science Research Project of China Institute of Communications Education, China (JT2022ZD009).

Citation

Liu, L., Wang, L. and Xiao, Z. (2024), "Flexural behavior of RC beams reinforced by ECC layer and steel plate: numerical simulation", International Journal of Structural Integrity, Vol. ahead-of-print No. ahead-of-print. https://doi.org/10.1108/IJSI-08-2023-0083

Publisher

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Emerald Publishing Limited

Copyright © 2024, Emerald Publishing Limited

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