Performance Assessment of Self-Healing Polymer-Modified Bitumens by Evaluating the Suitability of Current Failure Definition, Failure Criterion, and Fatigue-Restoration Criteria
Abstract
:1. Introduction
- To assess if the current failure definition, failure criterion, and fatigue performance analysis can simulate the SHE-modified bitumen behavior. If some inadequacies are found, convenient adjustments will be proposed.
- To evaluate if the current percent healing analysis framework can suitably accommodate the healing capability of SHE-modified asphalt binder. If some inadequacies are found, convenient adjustments will be proposed.
2. Materials and Methods
2.1. Materials
2.1.1. Neat Asphalt Binder
2.1.2. Self-Healing Elastomer
2.2. Methods
2.2.1. Preparation of STPUB
2.2.2. Aging Procedure
2.2.3. Performance Grade (PG) Characterization
2.2.4. LAS Test and S-VECD
2.2.5. LASH Test and S-VECD
3. Results
3.1. Failure Definition Assessment
3.2. Failure Criterion Assessment
3.3. Percent Restoration and Fatigue Analysis
New Parameters to Evaluate Bitumen Restoration and Fatigue Performance
4. Discussion
5. Conclusions
- Maximum stored PSE and × N failure definitions exhibited excellent capacities to accommodate the fatigue life of NA and SHE-modified bitumens. As well, both failure definitions identified STPUB1.0 with the highest fatigue performance increment (67.1%) with respect to NA.
- The (TRPSE)— failure criterion was the only one able to show a high efficiency (R2 up to 0.999) to predict and simulate asphalt binder fatigue life under different test conditions.
- Current restoration analysis framework was unable to fully accommodate %Rs and fatigue behavior of the SHE-modified asphalt binder.
- It was proved that higher %Rs did not ensure superior fatigue performance.
- It was proved that a greater number of loading cycles to failure () did not guarantee better fatigue performance.
- A new procedure (with new parameters) was proposed to assess the restoration and fatigue performance of asphalt materials, at the same time. It showed suitable results, but more experiments are needed. Besides, the new procedure identified STPUB1.0 with the greatest percent restoration efficiency up to 154.02%.
- According to the experimental data in this study, the SHE optimum content in NA was equal to 1%.
- Stored PSE is a factor with a high influence on bitumen fatigue performance.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Test | Standard Value | Measured Value | Standard Test * |
---|---|---|---|
Penetration (25 °C, 5 s, 100 g) (0.1 mm) | 60~80 | 60.1 | T0604 |
PI | −1.5~1.0 | −0.49 | T0604 |
Softening point (°C) | ≥46 | 51.1 | T0606 |
Viscosity (60 °C) (Pa·s) | ≥180 | 219 | T0620 |
Ductility (10 °C) | ≥45 | 62 | T0605 |
Ductility (15 °C) | ≥100 | 115.1 | T0605 |
Wax content (%) | ≤2.2 | 1.8 | T0615 |
Flash point (°C) | ≥260 | 300 | T0611 |
Density (15 °C) (g/cm3) | - | 1.033 | T0603 |
After RTFO: | |||
Mass change (%) | ≤±0.8 | 0.021 | T0609 |
Residual penetration ratio (%) | ≥61 | 67 | T0604 |
Residual ductility (10 °C) | ≥0.6 | 8 | T0605 |
Parameters | STPU Values |
---|---|
Tensile strength (MPa) | 13.5 ± 2.2 |
Elongation [dried state] (%) | 1460 ± 87 |
Density (g/cm3) | 1.07 |
Melting point (°C) | 120 a |
Material Information | Aging Condition | Test Description | Note |
---|---|---|---|
NA, STPUB1.0, STPUB3.0, STPUB5.0 | PAV | 1- LAS *: CSR ≈ 0.01%/cycle, 25 °C | To assess the effectiveness of failure definition |
NA | PAV | 2- LAS: CSR ≈ 0.01%/cycle, 25 °C CSR ≈ 0.005%/cycle, 25 °C CSR ≈ 0.02%/cycle, 23 °C | To assess the effectiveness of failure definition and failure criterion. |
STPUB1.0 | PAV | 3- LAS: CSR ≈ 0.01%/cycle, 25 °C CSR ≈ 0.005%/cycle, 25 °C CSR ≈ 0.02%/cycle, 23 °C | To assess the effectiveness of failure definition and failure criterion. |
STPUB3.0 | PAV | 4- LAS: CSR ≈ 0.01%/cycle, 25 °C CSR ≈ 0.005%/cycle, 27 °C CSR ≈ 0.02%/cycle, 25 °C | To assess the effectiveness of failure definition and failure criterion. |
STPUB5.0 | PAV | 5- LAS: CSR ≈ 0.01%/cycle, 25 °C CSR ≈ 0.005%/cycle, 23 °C CSR ≈ 0.02%/cycle, 27 °C | To assess the effectiveness of failure definition and failure criterion. |
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Lv, S.; Ge, D.; Wang, Z.; Wang, J.; Liu, J.; Ju, Z.; Peng, X.; Fan, X.; Cao, S.; Liu, D.; et al. Performance Assessment of Self-Healing Polymer-Modified Bitumens by Evaluating the Suitability of Current Failure Definition, Failure Criterion, and Fatigue-Restoration Criteria. Materials 2023, 16, 2488. https://doi.org/10.3390/ma16062488
Lv S, Ge D, Wang Z, Wang J, Liu J, Ju Z, Peng X, Fan X, Cao S, Liu D, et al. Performance Assessment of Self-Healing Polymer-Modified Bitumens by Evaluating the Suitability of Current Failure Definition, Failure Criterion, and Fatigue-Restoration Criteria. Materials. 2023; 16(6):2488. https://doi.org/10.3390/ma16062488
Chicago/Turabian StyleLv, Songtao, Dongdong Ge, Ziyang Wang, Jinping Wang, Jing Liu, Zihao Ju, Xinghai Peng, Xiyan Fan, Shihao Cao, Dingyuan Liu, and et al. 2023. "Performance Assessment of Self-Healing Polymer-Modified Bitumens by Evaluating the Suitability of Current Failure Definition, Failure Criterion, and Fatigue-Restoration Criteria" Materials 16, no. 6: 2488. https://doi.org/10.3390/ma16062488
APA StyleLv, S., Ge, D., Wang, Z., Wang, J., Liu, J., Ju, Z., Peng, X., Fan, X., Cao, S., Liu, D., Zhang, W., & Borges Cabrera, M. (2023). Performance Assessment of Self-Healing Polymer-Modified Bitumens by Evaluating the Suitability of Current Failure Definition, Failure Criterion, and Fatigue-Restoration Criteria. Materials, 16(6), 2488. https://doi.org/10.3390/ma16062488