Enhancing Asphalt Performance with CR/SBS Pellet: A Multiscale Investigation from Performance Characterization to Modification Mechanism
Abstract
1. Introduction
2. Materials and Experiments
2.1. Raw Materials
2.2. Experiments
2.2.1. Preparation and Aging of Asphalt Modified with CR/SBS Pellets
2.2.2. Physical Properties Tests
2.2.3. Rheological Properties Tests
2.2.4. FTIR Test
2.2.5. FM Tests
2.2.6. Thermal Stability Tests
3. Results and Discussion
3.1. Conventional Physical Properties
3.2. Rheological Properties
3.3. FTIR
3.4. Thermal Stability
3.5. Phase Morphology
4. Conclusions
- (1)
- Incorporating CR/SBS pellets into base asphalt reduces penetration while increasing softening point and viscosity. Higher pellet content leads to progressively lower penetration and further elevation in softening point and viscosity. The penetration and viscosity of SBS I-D are between 10% pellets MA and 20% pellets MA, and the softening point is between 20% and 30% pellets MA.
- (2)
- Compared with base asphalt, CR/SBS pellet-modified asphalt has significantly improved high-temperature and low-temperature performance. The rutting factor of SBS I-D is between 20% pellets MA and 30% pellets MA, and its low-temperature crack resistance is similar to that of 10% pellets MA.
- (3)
- The infrared spectroscopy results indicate that no new functional groups have appeared in the CR/SBS pellet-modified asphalt, further suggesting that the particle-modified asphalt is a physical mixing process.
- (4)
- The aging resistance of the modified asphalt improves progressively as the content of CR/SBS pellets increases. The GAI shows that the anti-aging performance of SBS I-D is between 20% pellets MA and 30% pellets MA. This trend aligns with the variation pattern observed for the carbonyl index in the FTIR spectra.
- (5)
- The thermal stability analysis results indicate that the pyrolysis temperature range of the modifier pellets and asphalt samples is between 220 °C and 500 °C. The order of pyrolysis rate is base asphalt > 10% pellets MA > 40% pellets MA > CR/SBS pellets, and the order of residual mass is CR/SBS pellets > 40% pellets MA > 10% pellets MA > base asphalt.
- (6)
- The fluorescence images indicate that the pellet modifier in the CR/SBS pellet-modified asphalt is distributed in dots in the asphalt, while the SBS modifier is integrated with the base asphalt in the SBS I-D.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| CR | Crumb rubber |
| SBS | Styrene–butadiene–styrene block copolymer |
| FTIR | Fourier transform infra-22 red spectroscopy |
| FM | Fluorescence microscopy |
| DSR | Dynamic shear rheometer |
| BBR | Bending beam rheometer |
| DSC | Differential scanning calorimetry |
| G* | Complex modulus |
| δ | Phase angle |
| G*/sinδ | Rutting factor |
| GAI | Complex modulus aging index |
| S | Creep stiffness |
| m | Creep rate |
| PAV | Pressure aging vessel |
| IC=O | Carbonyl index |
| TG | Thermogravimetry |
| DTG | Derivative thermogravimetry |
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| Indexes | Base Asphalt | SBS I-D | Specification | ||
|---|---|---|---|---|---|
| Test Results | Requirements | Test Results | Requirements | ||
| 25 °C penetration/0.1 mm | 68.6 | 60~80 | 51.6 | 30~60 | T0604 |
| Softening point/°C | 48.4 | ≥46 | 68.7 | ≥60.0 | T0606 |
| Ductility/cm | 185 | ≥100 (15 °C) | 23.5 | ≥20 (5 °C) | T0605 |
| Viscosity/Pa·s | 0.41 (135 °C) | / | 2.46 | ≤3 (135 °C) | T0625 |
| Asphalt | Fitting Equation | Eη (kJ/mol) | Goodness of Fit R2 |
|---|---|---|---|
| Base asphalt | 55.9 | 0.988 | |
| 10% Pellets MA | 60.9 | 0.990 | |
| 20% Pellets MA | 62.1 | 0.975 | |
| 30% Pellets MA | 64.7 | 0.998 | |
| 40% Pellets MA | 67.7 | 0.999 | |
| SBS I-D | 63.5 | 0.999 |
| Wave Numbers (cm−1) | Functional Groups and Vibration Type |
|---|---|
| 2954 | Asymmetric stretching vibration of −CH3 |
| 2916 | Asymmetric stretching vibration of −CH2- |
| 2848 | Symmetric stretching vibration of −CH2- |
| 1538 | Nitrogen-containing functional group |
| 1447 | The superposition of the antisymmetric angular vibration of −CH3 and the in-plane angular vibration of −CH2 |
| 1375 | Symmetric angular vibration of CH3 [50] |
| 1030 | Sulfoxide (>S=O) [51] |
| 966 | −C=C− of polybutyl diene segment |
| 810 | Cis−substituted C-H bond out-of-plane bending vibration [50] |
| 699 | C−H stretching vibration from the benzene ring in the polystyrene segment |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Li, W.; Zhao, Z.; Li, W.; Quan, W.; Dong, D.; Chen, S.; Wu, S. Enhancing Asphalt Performance with CR/SBS Pellet: A Multiscale Investigation from Performance Characterization to Modification Mechanism. Polymers 2026, 18, 1474. https://doi.org/10.3390/polym18121474
Li W, Zhao Z, Li W, Quan W, Dong D, Chen S, Wu S. Enhancing Asphalt Performance with CR/SBS Pellet: A Multiscale Investigation from Performance Characterization to Modification Mechanism. Polymers. 2026; 18(12):1474. https://doi.org/10.3390/polym18121474
Chicago/Turabian StyleLi, Wen, Zenggang Zhao, Wei Li, Weiwen Quan, Dawei Dong, Shuyang Chen, and Shaopeng Wu. 2026. "Enhancing Asphalt Performance with CR/SBS Pellet: A Multiscale Investigation from Performance Characterization to Modification Mechanism" Polymers 18, no. 12: 1474. https://doi.org/10.3390/polym18121474
APA StyleLi, W., Zhao, Z., Li, W., Quan, W., Dong, D., Chen, S., & Wu, S. (2026). Enhancing Asphalt Performance with CR/SBS Pellet: A Multiscale Investigation from Performance Characterization to Modification Mechanism. Polymers, 18(12), 1474. https://doi.org/10.3390/polym18121474
