Experimental and Finite Element Study on Bending Performance of Glulam-Concrete Composite Beam Reinforced with Timber Board
Abstract
:1. Introduction
2. Bending Tests
2.1. Composite Beam Sample
2.2. Test Results
3. Finite Element Model
3.1. Constitutive Model of Materials
3.2. Element Type and Interface Simulation
3.3. Validation and Discussion
4. Parametric Study
4.1. Section Height of Glulam Beam
4.2. Screw Connector Spacing
4.3. Thickness of Timber Board
4.4. Thickness of Concrete Slab
5. Conclusions
- (1)
- The experimental results demonstrated that the failure mechanism of the GCC beam was the combination of bend and tensile failure in the glulam beam. At the beginning of loading, the slip displacement was small because of the strong bonding effect at the concrete-timber interfacial region. When the loading was elevated to approximately 28% of the maximum load, with the applied loads increased, the attenuated composite actions at the interfacial region led to a rapid increase of the interface slips.
- (2)
- The finite element results showed that the numerical simulation could precisely predict the failure mode and the change characteristics of the composite beam in the loading process. The developed finite element model adequately predicted the load-deflection relationship and load-interface slip curve, particularly in the elasticity range. For the elastic-plastic stage, the predicted deflection of the GCC beam deviated from the test results due to the nonlinear bending performance. The elastic-plastic damage constitutive model of glulam needs to be optimized.
- (3)
- The parametric study results showed that with increase of the glulam beam height, the bending bearing capacity and flexural stiffness of the GCC beam were significantly improved. With the shear connectors spacing increased, the ultimate bearing capacity and bending stiffness of the composite beam were decreased. The existence of timber board had no significant effect on the flexural performance of the composite beams. The bending bearing capacity and flexural stiffness of the composite beams were enhanced with the increase of the concrete slab thickness.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Du, H.; Yuan, S.; Liu, P.; Hu, X.; Han, G. Experimental and Finite Element Study on Bending Performance of Glulam-Concrete Composite Beam Reinforced with Timber Board. Materials 2022, 15, 7998. https://doi.org/10.3390/ma15227998
Du H, Yuan S, Liu P, Hu X, Han G. Experimental and Finite Element Study on Bending Performance of Glulam-Concrete Composite Beam Reinforced with Timber Board. Materials. 2022; 15(22):7998. https://doi.org/10.3390/ma15227998
Chicago/Turabian StyleDu, Hao, Shengnan Yuan, Peiyang Liu, Xiamin Hu, and Guohui Han. 2022. "Experimental and Finite Element Study on Bending Performance of Glulam-Concrete Composite Beam Reinforced with Timber Board" Materials 15, no. 22: 7998. https://doi.org/10.3390/ma15227998
APA StyleDu, H., Yuan, S., Liu, P., Hu, X., & Han, G. (2022). Experimental and Finite Element Study on Bending Performance of Glulam-Concrete Composite Beam Reinforced with Timber Board. Materials, 15(22), 7998. https://doi.org/10.3390/ma15227998