Numerical Analysis of an Innovative Double-Strap Joint for the Splicing of Near-Surface Mounted Fiber-Reinforced Polymer Bars for Reinforced Concrete Beam Strengthening
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Research
2.1.1. Experimental Specimens
2.1.2. Experimental Testing
2.2. Finite Element Modeling
2.2.1. Model Description
2.2.2. Material Model of Concrete
2.2.3. Material Model of Epoxy
2.2.4. Material Model of Steel Reinforcement and GFRP Bars
2.2.5. Finite Element Mesh
2.2.6. Modeling of Interaction between Different Materials
3. Results and Discussion
3.1. Model Validation
3.2. Numerical Analysis of the Required Splicing Length of the GFRP
3.3. Parametric Study
3.4. Practical and Economic Feasibility
4. Conclusions
- The results of the nonlinear numerical analysis of RC beams strengthened by the NSM FRP technique, loaded to bending according to the four-point load disposition, showed very good agreement with the experimental results regarding the load–deflection relationships, failure mechanisms, and strains in the GFRP bars. Therefore, the model is validated.
- The concrete damage plasticity material model is suitable for a numerical analysis of concrete and epoxy with the appropriate definition of the parameters of the material mechanical properties (see Section 2.2.2 and Section 2.2.3).
- In most cases, beam failure occurs due to the exceeding of the shear stress between the concrete and the epoxy (bond stress) in the zone starting from the load application towards the supports as well as at the beginning of the groove for inserting the supplemental bars for splicing.
- It has been shown that an overlapping length of 60∅ provides an increase in beam strength equal to the increase in strength in the case of an NSM FRP bar without a cut-off.
- With an increase in the diameter of the FRP bars (Ø8, Ø10, and Ø12), the strength of the strengthened beams increases for about 10% in the case of GFRP bars and about 5% in the case of CFRP bars.
- Via the application of CFRP bars instead of GFRP bars, one achieves higher beam strength, but lower beam ductility, for the same diameters used. Therefore, choosing between CFRP and GFRP bars for the strengthening of the RC beam should be based on the load-bearing requirements, but with the limitation of preventing the brittle failure of the strengthened beam under the ultimate design loads.
- The failure mechanism is qualitatively the same regardless of the material of FRP bars, but in the case of CFRP a more prominent peeling-off at the concrete–epoxy joint occurs.
- Potential savings in the material and construction time are possible via the application of the proposed double-strap joint method compared to the classic lap splice method.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameter | Value |
---|---|
Dilation angle, ψ | 30° |
Flow potential eccentricity, є | 0.1 |
Ratio of the biaxial compressive and uniaxial compressive yield stress, σb0/σc0 | 1.16 |
Ratio of the second stress invariant on the tensile meridian to that on the compressive meridian at initial yield, K | 0.666 |
Viscosity parameter, μ | 0.0001 |
Splicing Method | FRP Length (m) | Groove Volume (m3) | Groove Surface Area (m2) | Epoxy (kg) | Primer (kg) |
---|---|---|---|---|---|
Double-strap joint | 7.20 (101.41%) | 0.00276 (57.50%) | 0.363 (75.63%) | 4.278 (57.50%) | 0.109 (75.63%) |
Classic lap splice | 7.10 (100%) | 0.00480 (100%) | 0.480 (100%) | 7.440 (100%) | 0.144 (100%) |
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Ranković, S.; Zorić, A.; Vacev, T.; Petrović, Ž. Numerical Analysis of an Innovative Double-Strap Joint for the Splicing of Near-Surface Mounted Fiber-Reinforced Polymer Bars for Reinforced Concrete Beam Strengthening. Appl. Sci. 2023, 13, 12387. https://doi.org/10.3390/app132212387
Ranković S, Zorić A, Vacev T, Petrović Ž. Numerical Analysis of an Innovative Double-Strap Joint for the Splicing of Near-Surface Mounted Fiber-Reinforced Polymer Bars for Reinforced Concrete Beam Strengthening. Applied Sciences. 2023; 13(22):12387. https://doi.org/10.3390/app132212387
Chicago/Turabian StyleRanković, Slobodan, Andrija Zorić, Todor Vacev, and Žarko Petrović. 2023. "Numerical Analysis of an Innovative Double-Strap Joint for the Splicing of Near-Surface Mounted Fiber-Reinforced Polymer Bars for Reinforced Concrete Beam Strengthening" Applied Sciences 13, no. 22: 12387. https://doi.org/10.3390/app132212387
APA StyleRanković, S., Zorić, A., Vacev, T., & Petrović, Ž. (2023). Numerical Analysis of an Innovative Double-Strap Joint for the Splicing of Near-Surface Mounted Fiber-Reinforced Polymer Bars for Reinforced Concrete Beam Strengthening. Applied Sciences, 13(22), 12387. https://doi.org/10.3390/app132212387