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Article

Numerical Modelling and Parametric Study of Steel-Concrete Composite Slim-Floor Flexural Beam Using Dowel Shear Connectors

Faculty of Engineering and Digital Technologies, University of Bradford, Bradford BD7 1DP, UK
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Authors to whom correspondence should be addressed.
Infrastructures 2025, 10(6), 146; https://doi.org/10.3390/infrastructures10060146
Submission received: 20 March 2025 / Revised: 2 June 2025 / Accepted: 9 June 2025 / Published: 13 June 2025
(This article belongs to the Section Infrastructures and Structural Engineering)

Abstract

The use of steel-concrete composite slim-floor beams with dowel shear connectors is uncommon, and the design rules provided in Eurocode 4 for composite construction are not directly applicable to the slim-floor composite beam. In this paper, a finite element model is developed, followed by a parametric study that examines the effects of various shear connector parameters on the structural behaviour of composite beams. The comparison and analysis show that the load-bearing capacity increases with a bigger concrete dowel, as long as the shear connection degree is less than 100% and the dowel diameter is not greater than 80 mm; the load-bearing capacity goes up about 5–10% for every 10 N/mm2 increase in concrete strength and about 2% for every 4 mm increase in rebar diameter in the dowel; also, the dowel central spacing has a big impact on the structural behaviour. The composite beams showed great flexibility, with the end slip at the highest load being more than 6 mm and the maximum load declining by less than 15% when the midspan deflection reached L/30. The proposed calculation method for bending moment resistance is more than 90% accurate for composite beams that have a shear connection degree greater than 40%. The findings from this research provided more profound insights into the behaviour of this type of slim-floor composite beam.
Keywords: slim-floor flexural composite beam; dowel shear connector; shear resistance; numerical modelling; parameter study; bending moment resistance slim-floor flexural composite beam; dowel shear connector; shear resistance; numerical modelling; parameter study; bending moment resistance

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MDPI and ACS Style

Xu, X.; Dai, X.; Lam, D. Numerical Modelling and Parametric Study of Steel-Concrete Composite Slim-Floor Flexural Beam Using Dowel Shear Connectors. Infrastructures 2025, 10, 146. https://doi.org/10.3390/infrastructures10060146

AMA Style

Xu X, Dai X, Lam D. Numerical Modelling and Parametric Study of Steel-Concrete Composite Slim-Floor Flexural Beam Using Dowel Shear Connectors. Infrastructures. 2025; 10(6):146. https://doi.org/10.3390/infrastructures10060146

Chicago/Turabian Style

Xu, Xinxin, Xianghe Dai, and Dennis Lam. 2025. "Numerical Modelling and Parametric Study of Steel-Concrete Composite Slim-Floor Flexural Beam Using Dowel Shear Connectors" Infrastructures 10, no. 6: 146. https://doi.org/10.3390/infrastructures10060146

APA Style

Xu, X., Dai, X., & Lam, D. (2025). Numerical Modelling and Parametric Study of Steel-Concrete Composite Slim-Floor Flexural Beam Using Dowel Shear Connectors. Infrastructures, 10(6), 146. https://doi.org/10.3390/infrastructures10060146

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