Numerical Analysis of the Load-Displacement Behaviour of Cast-in-Place Progressive Anchorage in Reinforced Concrete Members
Abstract
:1. Introduction
2. Experimental Investigation
2.1. Description of the Problem and Basic Parameters of the Tested Specimens
- the influence of the shape and dimensions of the beams and their reinforcement on the anchorage system resistance,
- the influence of the supplementary reinforcement on the resistance of the anchorage and its global effect,
- load transfer from the anchor head to the concrete.
2.2. Test Setup and Testing Method
2.3. Results of Experiments
3. Numerical Analysis
3.1. Geometric Characteristics of the Model
3.2. Material Characteristics of the Model
3.3. Discretization and Analysis
4. Results of Numerical Simulation
4.1. Anchorage without Supplementary Reinforcement
4.2. Anchorage with Supplementary Reinforcement
5. Study of the Influence of Fundamental Parameters on the Load-Displacement Behavior of the Anchorage
6. Discussion and Conclusions
- A short-headed anchor’s resistance can be increased by more than 70% by using supplementary reinforcement in the form of stirrups and longitudinal rebars, proving the performed experimental measurement. Supplementary reinforcement can also prevent brittle failure of the anchorage.
- It is possible to create a numerical model by using suitable specialized software that credibly simulates the action of a tensile-loading anchor with or without supplementary reinforcement.
- The mechanism of failure, the way of crack propagation, and the predicted value of the anchorage resistance determined by the numerical analysis correspond to the experiments. The correlation coefficient reaches a value of more than 0.95.
- According to the numerical analysis, the influence of concrete strength on anchorage resistance is non-linear, and it is higher for anchors without supplementary reinforcement.
- The use of supplementary reinforcement, although small in diameter (Ø 6 mm), can significantly increase the anchorage’s final resistance (+55%). However, further increasing the supplementary reinforcement diameter (area) does not cause such a significant increase in the anchorage resistance.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
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Specimen | Load at 0.9 mm Displacement [kN] | Load at 1.8 mm Displacement [kN] | Fmax [kN] | Displacement at Fmax [mm] |
---|---|---|---|---|
1B | 180.0 | 249.7 | 294.9 | 5.53 |
3C | 121.2 | 152.8 | 167.7 | 2.89 |
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Farbák, M.; Jošt, J.; Hlinka, R.; Rosmanit, M. Numerical Analysis of the Load-Displacement Behaviour of Cast-in-Place Progressive Anchorage in Reinforced Concrete Members. Appl. Sci. 2021, 11, 2343. https://doi.org/10.3390/app11052343
Farbák M, Jošt J, Hlinka R, Rosmanit M. Numerical Analysis of the Load-Displacement Behaviour of Cast-in-Place Progressive Anchorage in Reinforced Concrete Members. Applied Sciences. 2021; 11(5):2343. https://doi.org/10.3390/app11052343
Chicago/Turabian StyleFarbák, Matúš, Jozef Jošt, Richard Hlinka, and Miroslav Rosmanit. 2021. "Numerical Analysis of the Load-Displacement Behaviour of Cast-in-Place Progressive Anchorage in Reinforced Concrete Members" Applied Sciences 11, no. 5: 2343. https://doi.org/10.3390/app11052343
APA StyleFarbák, M., Jošt, J., Hlinka, R., & Rosmanit, M. (2021). Numerical Analysis of the Load-Displacement Behaviour of Cast-in-Place Progressive Anchorage in Reinforced Concrete Members. Applied Sciences, 11(5), 2343. https://doi.org/10.3390/app11052343