Research on the Rheological Performance of Fast-Melting SBS-Modified Asphalt under Complex Environmental Factors
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Preparation of Fast-Melting SBS-Modified Asphalt
2.3. Preparation of Salt Solutions
2.4. Experimental Methods
2.4.1. Aging Process Simulation
2.4.2. Dynamic Shear Rheometer Test
2.4.3. Bending Beam Rheometer Test
3. Results and Discussion
3.1. High-Temperature Characteristics
3.1.1. Temperature Sweep Test
3.1.2. Multiple Stress Creep and Recovery (MSCR) Test
3.2. Low-Temperature Characteristics
3.2.1. Creep Stiffness and Creep Rate
3.2.2. ΔTc Value
3.2.3. Low-Temperature Performance Evaluation Based on the Burgers Model
- Burgers Model Parameters
- 2.
- Relaxation Time
- 3.
- Dissipated Energy Ratio
- 4.
- Low-Temperature Evaluation Indices
- 5.
- Comprehensive Low-Temperature Compliance Parameter
4. Conclusions
- The coupling effects of thermal oxidation, ultraviolet light, and salt solution better reflect the actual aging conditions of asphalt roads. As indicated by the results in Section 3, these coupled factors accelerate the aging of asphalt, affecting both high-temperature and low-temperature rheological performance. Few researchers in past studies have examined these factors in combination, highlighting that the influence of complex environmental factors on asphalt cannot be overlooked.
- Compared to unmodified asphalt, SBS-T-modified asphalt shows a significant improvement in both high-temperature rheological properties and low-temperature performance under the same aging conditions. The SBS-T modifier not only addresses the issue of easy segregation associated with traditional SBS modifiers, but also enhances the overall performance of the asphalt. The findings of this study provide a theoretical foundation for the practical application of SBS-T-modified asphalt in road construction.
- The dynamic shear rheometer (DSR) tests indicate that under multiple aging factors, the rutting factor (G*/sinδ) is the smallest, Jnr is the largest, and R is the smallest after PAV+UV aging. This combination of factors leads to the greatest reduction in the high-temperature performance of SBS-T-modified asphalt. However, after PAV+UV+salt solution aging, the performance of SBS-T-modified asphalt improves, but the positive impact on high-temperature performance diminishes as the salt solution concentration increases.
- The bending beam rheometer (BBR) tests reveal that under multiple aging factors, SBS-T-modified asphalt exhibits the smallest S value, the largest m value, and the highest ΔTc value after PAV+UV aging, indicating the least reduction in low-temperature performance. However, after aging under the combined influence of three factors including salt solution, the low-temperature performance of SBS-T-modified asphalt decreases significantly, with a sharp drop in the ΔTc value. The salt solution has the most significant negative impact on the low-temperature crack resistance of SBS-T-modified asphalt, leading to a notable decline in its low-temperature performance.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Items | Results | Test Methods |
---|---|---|
Penetration (25 °C, 0.1 mm) | 72 | T0604-2011 |
Softening point (°C) | 50.5 | T0606-2011 |
Ductility (25 °C, cm) | >100 | T0625-2011 |
Dynamic viscosity (135 °C, Pa·s) | 0.68 | T0605-2011 |
Indexes | Results |
---|---|
Appearance (Green particles) | - |
Mass of a single particle (g) | 0.25 |
Ash (%) | 0.42 |
Dispersion of dry mixing | No particle residue |
Items | Results | Test Methods |
---|---|---|
Penetration (25 °C, 0.1 mm) | 79 | T0604-2011 |
Softening point (°C) | 66 | T0606-2011 |
Ductility (5 °C, cm) | 36.2 | T0625-2011 |
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Li, R.; Wang, Y.; Zhu, W.; Chen, Y.; Yue, J. Research on the Rheological Performance of Fast-Melting SBS-Modified Asphalt under Complex Environmental Factors. Coatings 2024, 14, 1241. https://doi.org/10.3390/coatings14101241
Li R, Wang Y, Zhu W, Chen Y, Yue J. Research on the Rheological Performance of Fast-Melting SBS-Modified Asphalt under Complex Environmental Factors. Coatings. 2024; 14(10):1241. https://doi.org/10.3390/coatings14101241
Chicago/Turabian StyleLi, Ruixia, Yihan Wang, Wei Zhu, Yijun Chen, and Jinchao Yue. 2024. "Research on the Rheological Performance of Fast-Melting SBS-Modified Asphalt under Complex Environmental Factors" Coatings 14, no. 10: 1241. https://doi.org/10.3390/coatings14101241
APA StyleLi, R., Wang, Y., Zhu, W., Chen, Y., & Yue, J. (2024). Research on the Rheological Performance of Fast-Melting SBS-Modified Asphalt under Complex Environmental Factors. Coatings, 14(10), 1241. https://doi.org/10.3390/coatings14101241