Enhancement of the Concrete Durability with Hybrid Nano Materials
Abstract
:1. Introduction
2. Experimental Program
2.1. Material
2.2. Mixing Procedure and Mixture Constituents
2.3. Testing
3. Test Results and Discussion
3.1. Air Content
3.2. Workability
3.3. Compressive Strength
3.4. Tensile Strength
3.5. Flexural Strength
3.6. Sorptivity
3.7. Water Penetration Test
3.8. Chloride Penetration Test
3.9. Corrosion Resistance
3.10. Scanning Electron Microscope (SEM)
4. Conclusions
- In the fresh stage, adding CNT% in the cementitious composites increased the air content of concrete as compared to the control mix. The consistency of concrete slightly increased with the small amounts of carbon nanotubes, while the addition of more CNT caused a decrement in the slump of concrete.
- The maximum peak of compressive strength was 26.4% with 0.04% CNT as compared to the control mix. The maximum peak of tensile strength was 40.4% with 0.02% CNT when compared to the control mix. The maximum peak of flexural strength was 15.5% with both 0.01% and 0.02% CNT when compared to the control mix. The maximum bond strength as subjected to the corrosive environment enhanced with the cement replacement 0.01% CNT as compared to the control concrete.
- The predominance of a re-agglomeration process of CNT inhibited the pozzolanic activity of NC and hindered the hydration reaction of cement at late ages, which caused a decrease in bond strength at a high percentage level of CNT.
- The mixtures incorporating CNT% showed a slight increment in sorptivity and penetration depth as compared to the control paste with the same increment trend in chloride penetration.
- From the SEM images, it was concluded that the major effects of CNTs are (1) filling effect, (2) bridging effect, and (3) nucleation as sub-centroplasm for C-S-H gel. These findings comply with the results reported from the mechanical strength and durability tests.
- Hybrid nanoparticles improve the corrosion resistance and have proven useful resistance of crack propagation within the concrete matrix. The engineering properties were significantly improved by using hybrid nanoparticles where the high pozzolanic effect of NC led to improve the mechanical strength, as long as the nanotubes were used to reinforce concrete and, hence, enhanced the durability properties. These results agreed with the measured tests.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Element | SiO2 | Fe2O3 | Al2O3 | CaO | MgO | TiO2 | Na2O | L.O.I |
Content % | 61.24 | 1.06 | 20.89 | 0.16 | 0.22 | 1.61 | 0.71 | 13.12 |
Appearance | Brown free-flowing liquid |
Specific gravity@24 °C | 1.190 |
Air-entrainment | Maximum 1% |
Nitrate content (%) | Nil |
Chloride content (%) | Nil to BS 5075 |
Mix ID | Cement | NC | CNT | Fine Aggregate | Coarse Aggregate | Water | S.P |
---|---|---|---|---|---|---|---|
NC | 427.5 | 22.5 | - | 597 | 1109 | 192 | 5.4 |
NC-CNT1 | 427.46 | 0.045 | |||||
NC-CNT2 | 427.41 | 0.09 | |||||
NC-CNT4 | 427.32 | 0.18 |
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Gamal, H.A.; El-Feky, M.S.; Alharbi, Y.R.; Abadel, A.A.; Kohail, M. Enhancement of the Concrete Durability with Hybrid Nano Materials. Sustainability 2021, 13, 1373. https://doi.org/10.3390/su13031373
Gamal HA, El-Feky MS, Alharbi YR, Abadel AA, Kohail M. Enhancement of the Concrete Durability with Hybrid Nano Materials. Sustainability. 2021; 13(3):1373. https://doi.org/10.3390/su13031373
Chicago/Turabian StyleGamal, Heba A., M. S. El-Feky, Yousef R. Alharbi, Aref A. Abadel, and Mohamed Kohail. 2021. "Enhancement of the Concrete Durability with Hybrid Nano Materials" Sustainability 13, no. 3: 1373. https://doi.org/10.3390/su13031373
APA StyleGamal, H. A., El-Feky, M. S., Alharbi, Y. R., Abadel, A. A., & Kohail, M. (2021). Enhancement of the Concrete Durability with Hybrid Nano Materials. Sustainability, 13(3), 1373. https://doi.org/10.3390/su13031373