Evaluation of Carbon Fiber Grid Reinforced Concrete Panel for Disaster Response and Improved Seismic Performance
Abstract
:1. Introduction
2. Experiments
3. Results and Discussion
4. Conclusions
- (1)
- The flexural strength of concrete panels was 8.08 MPa with no layers, 8.65 MPa with one layer, and 9.27 MPa with two layers, and increased with the increasing number of carbon fiber grids. Flexural strength increased by 7% with one layer and 15% with two layers compared with no layer.
- (2)
- The energy dissipation capacity of concrete panels was 0.06 kN∙m with no layers, 1.89 kN∙m with one layer, and 3.52 kN∙m with two layers, and increased with the increasing number of carbon fiber grids. Energy dissipation capacity increased by 30 times with one layer and 56 times with two layers compared with no layer and showed improvement in terms of seismic performance.
- (3)
- Concrete panels with carbon fiber grids showed 7–15% higher flexural strength and 30–56 times higher energy dissipation capacity compared with no carbon fiber grid. Especially because of the large increase in the energy dissipation capacity, the carbon fiber grid reinforcement method can be considered an effective method for improving seismic performance.
- (4)
- This study compared the flexural strength characteristics of panels using carbon grids to those of unreinforced concrete, and a comparison with panels using existing reinforcing bars and meshes will be carried out in the future.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Specimen Size (mm) | Carbon Grid | Concrete Compressive Strength (MPa) | Experiments | |||||||
1200 × 600 × 75 | -No layer -1 layer -2 layers | 50.0 | Flexural strength Energy dissipation capacity | |||||||
Design strength (MPa) | W/B (%) | S/A (%) | Binding material (kg/) | Unit quantity (kg/) | Unit mass (kg/) | |||||
Cement | Fly ash | Silica fume | Fine aggregate | Coarse aggregate | ||||||
50 | 29.6 | 49 | 550 | 163 | 418 | 110 | 22 | 815 | 875 | |
Type of binder | Specific surface area () | Density () | Lg. loss | Chemical composition (%) | ||||||
OPC | 3.14 | 3.15 | 1.32 | 21.7 | 5.7 | 3.2 | 63.1 | 2.8 | 2.2 | |
Specific surface area () | Density () | Lg. loss | Chemical composition (%) | |||||||
160,000 | 2.21 | 1.38 | 96.65 | 1.87 | 0.03 | 0.38 | 0.19 | 0.32 | ||
Admixture type | Specific gravity | Fineness () | Ignition loss (%) | Moisture content (%) | Unit quantity ratio (%) | (%) | Activity factor (%) | |||
Boryeong fly ash | 2.22 | 2976 | 4.0 | 0.1 | 101 | 53.2 | 93.1 | |||
Admixture type | Phase | Color | Main component | Toxicity | Specific gravity | |||||
Superplasticizer | Liquid | Yellow | Polycarboxylic acid-based | None | 1.04 | |||||
Type | Size (mm) | Fineness modulus (F.M.) | Specific gravity | Absorption rate (%) | Performance rate (%) | Unit weight (kg/l) | Remarks | |||
Fine aggregate | 5 | 3.04 | 2.56 | 0.64 | 67.45 | 1.73 | Sea sand | |||
Coarse aggregate | 20 | 6.02 | 2.65 | 1.39 | 62.52 | 1.66 | Crushed coarse aggregate | |||
Type | Tensile strength (kN/m) | Secant modulus of elasticity (kN/m) | Tensile strain rate (%) | Nominal strength tensile strain rate (%) | ||||||
Machine | Width | Machine | Width | Machine | Width | Machine | Width | |||
Carbon fiber grids | 182.7 | 108.44 | 12,019 | 4180 | 2.2 | 3.6 | 3.5 | 3.8 |
Results | No Layer | One Layer | Two Layers |
---|---|---|---|
Max. load (kN) | 27.3 | 29.2 | 31.3 |
Max. displacement (mm) | 2.66 | 14.86 | 16.29 |
Flexural strength (MPa) | 8.08 | 8.65 | 9.27 |
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Kang, S.; Chai, C.; Hong, S. Evaluation of Carbon Fiber Grid Reinforced Concrete Panel for Disaster Response and Improved Seismic Performance. Appl. Sci. 2021, 11, 5223. https://doi.org/10.3390/app11115223
Kang S, Chai C, Hong S. Evaluation of Carbon Fiber Grid Reinforced Concrete Panel for Disaster Response and Improved Seismic Performance. Applied Sciences. 2021; 11(11):5223. https://doi.org/10.3390/app11115223
Chicago/Turabian StyleKang, Sukpyo, Charles Chai, and Seonguk Hong. 2021. "Evaluation of Carbon Fiber Grid Reinforced Concrete Panel for Disaster Response and Improved Seismic Performance" Applied Sciences 11, no. 11: 5223. https://doi.org/10.3390/app11115223
APA StyleKang, S., Chai, C., & Hong, S. (2021). Evaluation of Carbon Fiber Grid Reinforced Concrete Panel for Disaster Response and Improved Seismic Performance. Applied Sciences, 11(11), 5223. https://doi.org/10.3390/app11115223