Effect of Adding Carbon Nanotubes on the Freeze-Thaw and Thermal Fatigue Resistance of Latex Modified Mortar
Abstract
:1. Introduction
2. Experimental Program
2.1. Specimens’ Preparation
2.2. Freeze-Thaw and Thermal Fatigue Cycles
2.3. Physical and Mechanical Evaluations
3. Results and Discussion
3.1. Effect of CNTs Content on Compressive and Tensile Strengths
3.2. Effect of CNTs Content on Shrinkage over Time
3.3. Effect of CNTs Content on Flexural Behavior
4. Conclusions
- Freeze-thaw cycles adversely affect the compressive strength of LMM specimens due to the rapid development of microcracks in the first 150 cycles. The effect of freeze-thaw cycles is stabilized in the following 150 cycles, leading to relative rebound in the compressive strengths. The effect of thermal fatigue cycles is less pronounced on the compressive strength of different LMM specimens.
- Contrary to the compressive strength, the effect of freeze-thaw and thermal fatigue cycles on the tensile strength of LMM specimens was limited. This could be attributed to the difference in the failure mechanism of LMM specimens in compression and tension.
- It is apparent that adding CNTs improved the thermal resistance and freeze and thaw resistance of the produced LMM in compression. The role of CNTs here is evident in limiting the drop in compressive strength after the exposure to 150 cycles of freeze-thaw cycles and increasing the regain in compressive strength after the exposure to 300 cycles of freeze-thaw cycles. The CNTs effect is less evident in improving the compressive strength with thermal fatigue cycles.
- Large effect of using CNTs for improving the tensile strength of LMM specimens that were subjected to thermal fatigue cycles is observed. Similar improvements in tensile strength are observed for LMM specimens subjected to freeze-thaw cycles. By adding 1.5% CNTs, the improvements in the tensile strength reached 59% after the exposure to 300 cycles of thermal fatigue and 12% after the exposure to 300 cycles of freeze-thaw. The improvements in tensile strength could be attributed to the CNTs bridging effect. The bridging effect is supported by the friction and the noncovalent bond between the nanotubes and surrounding latex.
- Adding CNTs results in improvement in compressive strength and tensile strength of LMM. Improvement in tensile strength is due to bridging.
- The use of CNTs in LMM mixtures does not alter the shrinkage strains developed at LMM specimens when exposed to freeze-thaw or thermal fatigue cycles. However, they contribute in stress transfer as noticed in the compression and tension test results.
- Adding CNTs increased the flexural load carrying capacity and ductility of LMM specimens subjected to freeze-thaw cycles. Such improvements are found to be in line with the improvements in the tensile strength observed after conducting the splitting tension test.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Mix ID | Portland Cement (kg/m3) | Sand (kg/m3) | Water (kg/m3) | SBR-Latex (kg/m3) | CNT (kg/m3) |
---|---|---|---|---|---|
LMM—0% | 530.2 | 1457.7 | 203.4 | 79.5 | 0 |
LMM—0.25% | 530.2 | 1457.7 | 203.4 | 79.5 | 0.2 |
LMM—0.50% | 530.2 | 1457.7 | 203.4 | 79.5 | 0.4 |
LMM—1.00% | 530.2 | 1457.7 | 203.4 | 79.5 | 0.8 |
LMM—1.25% | 530.2 | 1457.7 | 203.4 | 79.5 | 1.0 |
LMM—1.50% | 530.2 | 1457.7 | 203.4 | 79.5 | 1.2 |
LMM—2.00% | 530.2 | 1457.7 | 203.4 | 79.5 | 1.6 |
LMM—2.50% | 530.2 | 1457.7 | 203.4 | 79.5 | 2.0 |
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Abdel-Mohti, A.; Soliman, E.; Shen, H. Effect of Adding Carbon Nanotubes on the Freeze-Thaw and Thermal Fatigue Resistance of Latex Modified Mortar. Fibers 2018, 6, 19. https://doi.org/10.3390/fib6020019
Abdel-Mohti A, Soliman E, Shen H. Effect of Adding Carbon Nanotubes on the Freeze-Thaw and Thermal Fatigue Resistance of Latex Modified Mortar. Fibers. 2018; 6(2):19. https://doi.org/10.3390/fib6020019
Chicago/Turabian StyleAbdel-Mohti, Ahmed, Eslam Soliman, and Hui Shen. 2018. "Effect of Adding Carbon Nanotubes on the Freeze-Thaw and Thermal Fatigue Resistance of Latex Modified Mortar" Fibers 6, no. 2: 19. https://doi.org/10.3390/fib6020019
APA StyleAbdel-Mohti, A., Soliman, E., & Shen, H. (2018). Effect of Adding Carbon Nanotubes on the Freeze-Thaw and Thermal Fatigue Resistance of Latex Modified Mortar. Fibers, 6(2), 19. https://doi.org/10.3390/fib6020019