Synthesis and Effect of Encapsulating Rejuvenator Fiber on the Performance of Asphalt Mixture
Abstract
:1. Introduction
2. Materials and Test Methods
2.1. Gradation Design of Asphalt Mixture
2.2. Synthesis of the Three Kinds of Fibers
2.3. Characterization of the Three Kinds of Fibers
2.4. Road Performances of Asphalt Mixture with the Fibers
2.5. Self-Healing Capability of Asphalt Mixture with the Fibers
3. Results and Discussion
3.1. Characterization of Three Kinds of Self-Healing Fibers
3.1.1. Morphology
3.1.2. Chemical Structure
3.1.3. Thermal Stability
3.2. Road Performance of the Asphalt Mixture with Fibers
3.2.1. High-Temperature Performance
3.2.2. Low Temperature Performance
3.2.3. Water Sensitivity
3.2.4. Fatigue Performance
3.3. Self-Healing Capacity of the Asphalt Mixture with Fibers
4. Conclusions
- (a)
- Ca–alginate fiber, Ca–alginate/SiO2 composite fiber and Ca–alginate/GO composite fiber were successfully synthesized by microfluidic device. Nano SiO2 and GO particles were incorporated into the fiber wall. Rejuvenator was encapsulated inside those fibers in the form of droplets. The three kinds of fibers had excellent thermal stability, which meet the temperature requirement in the mixing and compaction process of asphalt mixture.
- (b)
- The addition of the three kinds of fibers improved high temperature anti-rutting ability of asphalt mixture. In addition, those fibers increased flexural strength and flexural modulus, while slightly decreased flexural strain of asphalt mixture. Moisture stability of asphalt mixture containing the fiber had a slight decrease. In addition, the fibers could prolong fatigue life of asphalt mixture under the action of encapsulated rejuvenator. In short, the road performances of asphalt mixture containing the fiber meet the requirements.
- (c)
- The self-healing ability of asphalt mixture with fiber was better than that of asphalt mixture without the fiber. It was worth noting that the synergistic action of microwave heating and rejuvenator could further significantly improve the self-healing ability of asphalt mixture.
- Three kinds of fibers encapsulating asphalt rejuvenator were synthesized;
- Road performance of asphalt mixture containing the fiber met the requirements;
- Three kinds of fibers could improve self-healing ability of asphalt mixture.
Author Contributions
Funding
Conflicts of Interest
References
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Sieve Size/mm | Designed Gradation/% |
---|---|
16 | 100 |
13.2 | 96.2 |
9.5 | 75.2 |
4.75 | 47.4 |
2.36 | 30.8 |
1.18 | 23.9 |
0.6 | 16.6 |
0.3 | 12.3 |
0.15 | 9.1 |
0.075 | 6.9 |
Types of Fiber | Symbology | Types of Asphalt Mixture | Symbology |
---|---|---|---|
Ca–alginate fiber | AF | Asphalt mixture containing Ca–alginate fiber | A2 |
Ca–alginate/SiO2 fiber | ASF | Asphalt mixture containing Ca–alginate/SiO2 fiber | A3 |
Ca–alginate/GO fiber | MRF | Asphalt mixture containing Ca–alginate/GO fiber | A4 |
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Shu, B.; Bao, S.; Wu, S.; Dong, L.; Li, C.; Yang, X.; Norambuena-Contreras, J.; Liu, Q.; Wang, Q. Synthesis and Effect of Encapsulating Rejuvenator Fiber on the Performance of Asphalt Mixture. Materials 2019, 12, 1266. https://doi.org/10.3390/ma12081266
Shu B, Bao S, Wu S, Dong L, Li C, Yang X, Norambuena-Contreras J, Liu Q, Wang Q. Synthesis and Effect of Encapsulating Rejuvenator Fiber on the Performance of Asphalt Mixture. Materials. 2019; 12(8):1266. https://doi.org/10.3390/ma12081266
Chicago/Turabian StyleShu, Benan, Shiwen Bao, Shaopeng Wu, Lijie Dong, Chao Li, Xu Yang, José Norambuena-Contreras, Quantao Liu, and Qing Wang. 2019. "Synthesis and Effect of Encapsulating Rejuvenator Fiber on the Performance of Asphalt Mixture" Materials 12, no. 8: 1266. https://doi.org/10.3390/ma12081266
APA StyleShu, B., Bao, S., Wu, S., Dong, L., Li, C., Yang, X., Norambuena-Contreras, J., Liu, Q., & Wang, Q. (2019). Synthesis and Effect of Encapsulating Rejuvenator Fiber on the Performance of Asphalt Mixture. Materials, 12(8), 1266. https://doi.org/10.3390/ma12081266