Does the Carbon Fibre Coating Reinforcement Have an Influence on the Bearing Capacity of High-Performance Self-Compacting Fibre-Reinforced Concrete?
Abstract
:1. Introduction
2. Research Significance
3. Materials and Methods
3.1. Preparation of Carbon Fibre Rings
3.2. Concrete Mixture and Preparation of the Specimens
3.3. Instrumentation and Testing Procedure
4. Results
4.1. Selected Mechanical Properties of the Hardened Specimens
4.2. Course of Destruction
5. Conclusions
- When using CFCR rings, the loss of the bearing capacity of concrete elements can be observed. With an increase in both the number of CFCR layers and the distance from the center of gravity of the specimens, the compressive strength decreases. In the case of using two rings inside the structure of the concrete, a 23% loss of compressive strength was observed.
- No cooperation between the CFCR rings and concrete was observed. The outer surface of the CFCR ring could be treated as the shear surface, which does not allow cooperation between the HPSCFRC and the CFRC rings. Cracks appear on the surface of the CFCR rings and then propagate to the external edges of the specimen, which in turn leads to their destruction.
- Usage of CFCR rings inside the structure of HPSCFRC is not justified due to the executive difficulties and stress-strain behavior for each analyzed configuration.
- The efficiency of reinforced HPSCFRC using outer CF sheets with cement matrix is not as sufficient as could be expected. Due to the observed low adhesion between the composite reinforcement and concrete in the ‘C150’ type specimens, it is not recommended to reinforce this type of concrete with CF sheets using infusible cement matrix.
Funding
Acknowledgments
Conflicts of Interest
References
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Type | Young Modulus [GPa] | Tension Strength [MPa] | Ultimate Elongation at the Break [%] | Effective Thickness [mm] | Density [g/m2] |
---|---|---|---|---|---|
Sikawrap 301c | 230 | 4900 | 1.7 | 0.167 | 304 |
Cement [kg/m3] | Sika Fume [kg/m3] | Coarse Aggregate [kg/m3] | Fine Aggregate [kg/m3] | Super-Plasti-Cizer [kg/m3] | Steel Fibres [kg/m3] | Water [kg/m3] | W/C [-] |
---|---|---|---|---|---|---|---|
500 | 60 | 1000 | 650 | 17.5 | 78 | 160 | 0.32 |
Type | Diameter of CFCR Ring [mm] |
---|---|
C | - |
C60 | 60 |
C110 | 110 |
C60-110 | 60 and 110 |
C150 | 150 * |
Specimen | Compressive Strength [MPa] | Average Compressive Strength [MPa] | Standard Deviation [MPa] | Average Strength in Relation to reference [%] | Axial Strain during Fracture [-] | Average Axial Strain during Fracture [-] | Transverse Strain during Fracture [-] | Average Transverse Strain during Fracture [-] | Young Modulus [GPa] | Average Young Modulus [GPa] |
---|---|---|---|---|---|---|---|---|---|---|
C-1 | 81.31 | 4.51 | 1.64 | 34.67 | ||||||
C-2 | 80.81 | 81.04 | 0.32 | 0 | 4.29 | 4.48 | 0.67 | 1.30 | 31.78 | 34.89 |
C-3 | 80.71 | 4.27 | 1.23 | 36.78 | ||||||
C-4 | 81.31 | 4.86 | 1.64 | 36.31 | ||||||
C60-1 | 74.44 | 4.16 | 1.39 | 34.77 | ||||||
C60-2 | 73.70 | 78.62 | 6.47 | −2.99 | 4.15 | 4.41 | 0.81 | 1.34 | 34.93 | 34.42 |
C60-3 | 87.78 | 4.72 | 1.06 | 35.65 | ||||||
C60-4 | 78.54 | 4.61 | 1.33 | 34.34 | ||||||
C110-1 | 49.32 | 5.83 | 2.17 | 30.36 | ||||||
C110-2 | 86.82 | 68.35 | 15.31 | −15.66 | 4.29 | 4.71 | 0.78 | 1.18 | 38.29 | 37.65 |
C110-3 | 68.39 | 3.80 | 0.57 | 43.20 | ||||||
C110-4 | 68.86 | 4.90 | 1.18 | 38.75 | ||||||
C60-110-1 | 44.40 | 6.49 | 1.65 | 28.05 | ||||||
C60-110-2 | 81.53 | 62.49 | 19.73 | −22.89 | 4.34 | 5.51 | 0.85 | 37.65 | 35.49 | |
C60-110-3 | 46.56 | 7.20 | 1.79 | 27.08 | 33.51 | |||||
C60-110-4 | 77.45 | 4.02 | 2.55 | 43.40 | ||||||
C150-1 | 87.11 | 4.63 | 1.56 | 36.45 | ||||||
C150-2 | 82.76 | 4.42 | 1.05 | 32.48 | ||||||
C150-3 | 81.35 | 84.29 | 2.69 | 4.01 | 4.56 | 4.58 | 1.12 | 1.23 | 35.15 | 35.01 |
C150-4 | 85.94 | 4.71 | 1.18 | 35.97 |
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Ostrowski, K. Does the Carbon Fibre Coating Reinforcement Have an Influence on the Bearing Capacity of High-Performance Self-Compacting Fibre-Reinforced Concrete? Materials 2019, 12, 4054. https://doi.org/10.3390/ma12244054
Ostrowski K. Does the Carbon Fibre Coating Reinforcement Have an Influence on the Bearing Capacity of High-Performance Self-Compacting Fibre-Reinforced Concrete? Materials. 2019; 12(24):4054. https://doi.org/10.3390/ma12244054
Chicago/Turabian StyleOstrowski, Krzysztof. 2019. "Does the Carbon Fibre Coating Reinforcement Have an Influence on the Bearing Capacity of High-Performance Self-Compacting Fibre-Reinforced Concrete?" Materials 12, no. 24: 4054. https://doi.org/10.3390/ma12244054
APA StyleOstrowski, K. (2019). Does the Carbon Fibre Coating Reinforcement Have an Influence on the Bearing Capacity of High-Performance Self-Compacting Fibre-Reinforced Concrete? Materials, 12(24), 4054. https://doi.org/10.3390/ma12244054