Axial Compressive Performance of a Composite Concrete-Filled GFRP Tube Square Column
Abstract
:Featured Application
Abstract
1. Introduction
2. Materials and Methods
2.1. Specimen Design and Fabrication
2.2. Material Properties
2.3. Loading and Locations of the Strain Gauges
3. Results
3.1. Test Phenomenon and Failure Mode
3.2. Axial Load–Displacement Curve
3.3. Axial Load–Strain Curve
4. Finite Element Analysis Model
4.1. Material Model
4.2. Test Verification
4.3. Parametric Analysis
5. Conclusions
- (1)
- The failure mode of the composite GFRP-confined concrete square column was internal concrete collapse. The GFRP tube reached the load capacity before it ruptured, the composite column expanded peripherally, the externally wrapped GFRP fiber broke successively, and the specimen exhibited ductile failure;
- (2)
- Based on a comparison of the load–strain relationship curves of the GFRP tube and externally wrapped GFRP strips, it is evident that the two are highly consistent, thereby indicating that the externally wrapped GFRP strips and pultruded GFRP tube could undergo cooperative deformation under the action of axial loading, and the impact of bond slip between the materials was negligible on the mechanical properties of the structure;
- (3)
- An increase in the number of externally wrapped GFRP fiber layers or a reduction in the clear spacing of GFRP strips could improve the load capacity of the composite columns. The GFRP numerical model adopts a linear elastic model, and the bearing capacity of the specimen can be predicted by the tensile strength of GFRP in the model, which is in good agreement with the experimental results. However, in order to obtain more accurate results in subsequent studies, the failure criterion of FRP should be introduced to improve the model;
- (4)
- Compared with the performance of the entirely wrapped GFRP tube, the load capacity of the specimens in the W50S40 group declined by 9.8%, while the peak efficiency of the GFRP strips increased by 50%. The adoption of proper GFRP layers and strip intervals not only facilitates convenient construction, but also ensures that the bearing capacity of the composite column is appropriate and that the material properties of GFRP are fully utilized.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Specimen Number | Section Size L × B/mm | Specimen Height H/mm | Chamfer Radius R/mm | GFRP Width W/mm | GFRP Clear Spacing S/mm | Number of GFRP Layers |
---|---|---|---|---|---|---|
W600S0-1, 2 | 204 × 204 | 600 | 5 | 600 | / | 4 |
W50S40-1, 2 | 204 × 204 | 600 | 5 | 50 | 40 | 4 |
W50S85-1, 2 | 204 × 204 | 600 | 5 | 50 | 85 | 4 |
Material Properties | GFRP Tube | GFRP |
---|---|---|
ffrp/MPa | 330.0 | 400.0 |
f’frp/Mpa | 115.0 | - |
εfrp | 0.014 | 0.015 |
ε’frp | 0.007 | - |
E1/Gpa | 24.4 | 26.2 |
E2/Gpa | 17.5 | - |
υ12 | 0.35 | 0.32 |
Fcu/Mpa | εcu | Ec/Gpa | υ | fr/Mpa | ft/Mpa |
---|---|---|---|---|---|
30.8 | 0.004 | 30.0 | 0.2 | 4.62 | 2.77 |
Specimen Number | Nmax /kN | UNmax /mm | Nmax,ave /kN | I/% |
---|---|---|---|---|
W50S85-1 | 2392 | 8.81 | 2358.5 | - |
W50S85-2 | 2325 | 8.25 | ||
W50S40-1 | 2446 | 8.66 | 2482.0 | 5% |
W50S40-2 | 2518 | 8.96 | ||
W600S0-1 | 2830 | 9.50 | 2857.0 | 21% |
W600S0-2 | 2884 | 9.61 |
Specimen Number | ey /mm | eu /mm | μ | μa | I |
---|---|---|---|---|---|
W50S85-1 | 3.8 | 8.83 | 2.32 | 2.20 | - |
W50S85-2 | 3.93 | 8.18 | 2.08 | ||
W50S40-1 | 3.33 | 8.82 | 2.65 | 2.67 | 21.4% |
W50S40-2 | 3.32 | 8.96 | 2.7 | ||
W600S0-1 | 2.94 | 9.5 | 3.24 | 3.05 | 38.5% |
W600S0-2 | 3.32 | 9.53 | 2.87 |
Ψ (°) | ϵ | σb0/σc0 | Kc | μ |
---|---|---|---|---|
30 | 0.1 | 1.16 | 0.6667 | 0.0005 |
Specimen Number | NF,Max/kN | NT,Max/kN | NF,Max/NT,Max |
---|---|---|---|
W50S85-1 | 2359 | 2392 | 0.986 |
W50S85-2 | 2325 | 1.015 | |
W50S40-1 | 2538 | 2446 | 1.038 |
W50S40-2 | 2518 | 1.008 | |
W600S0-1 | 2818 | 2830 | 0.996 |
W600S0-2 | 2884 | 0.977 |
Specimen Number | W/mm | S/mm | L |
---|---|---|---|
W50S130L2 | 50 | 130 | 2 |
W50S130L4 | 50 | 130 | 4 |
W50S130L6 | 50 | 130 | 6 |
W50S85L2 | 50 | 85 | 2 |
W50S85L4 | 50 | 85 | 4 |
W50S85L6 | 50 | 85 | 6 |
W50S60L2 | 50 | 60 | 2 |
W50S60L4 | 50 | 60 | 4 |
W50S60L6 | 50 | 60 | 6 |
W50S40L2 | 50 | 40 | 2 |
W50S40L4 | 50 | 40 | 4 |
W50S40L6 | 50 | 40 | 6 |
W600S0L2 | 600 | 0 | 2 |
W600S0L4 | 600 | 0 | 4 |
W600S0L6 | 600 | 0 | 6 |
Specimen Number | Load Capacity/kN | η/% |
---|---|---|
W50S0-2 | 2656.67 | - |
W50S40-2 | 2405.42 | −9.5% |
W50S60-2 | 2239.39 | −15.7% |
W50S85-2 | 2240.89 | −15.7% |
W50S0-4 | 2817.63 | - |
W50S40-4 | 2538.05 | −9.9% |
W50S60-4 | 2397.70 | −14.9% |
W50S85-4 | 2359.37 | −16.3% |
W50S0-6 | 2938.61 | - |
W50S40-6 | 2641.68 | −10.1% |
W50S60-6 | 2491.66 | −15.2% |
W50S85-6 | 2454.43 | −16.5% |
Specimen Number | GFRP Peak Efficiency N/mm2 | Improvement Ratio of the Peak Efficiency of GFRP |
---|---|---|
W50S0-2 | 2.71 | - |
W50S40-2 | 4.09 | 51% |
W50S60-2 | 4.57 | 69% |
W50S85-2 | 5.28 | 95% |
W50S0-4 | 1.44 | - |
W50S40-4 | 2.16 | 50% |
W50S60-4 | 2.45 | 70% |
W50S85-4 | 2.78 | 93% |
W50S0-6 | 1.00 | - |
W50S40-6 | 1.50 | 50% |
W50S60-6 | 1.70 | 70% |
W50S85-6 | 1.93 | 93% |
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Lu, J.; Qi, Y.; Li, Y.; Wang, X. Axial Compressive Performance of a Composite Concrete-Filled GFRP Tube Square Column. Appl. Sci. 2021, 11, 6757. https://doi.org/10.3390/app11156757
Lu J, Qi Y, Li Y, Wang X. Axial Compressive Performance of a Composite Concrete-Filled GFRP Tube Square Column. Applied Sciences. 2021; 11(15):6757. https://doi.org/10.3390/app11156757
Chicago/Turabian StyleLu, Jiancheng, Yujun Qi, Yifei Li, and Xuxu Wang. 2021. "Axial Compressive Performance of a Composite Concrete-Filled GFRP Tube Square Column" Applied Sciences 11, no. 15: 6757. https://doi.org/10.3390/app11156757
APA StyleLu, J., Qi, Y., Li, Y., & Wang, X. (2021). Axial Compressive Performance of a Composite Concrete-Filled GFRP Tube Square Column. Applied Sciences, 11(15), 6757. https://doi.org/10.3390/app11156757