Viscoelastic Properties, Rutting Resistance, and Fatigue Resistance of Waste Wood-Based Biochar-Modified Asphalt
Abstract
:1. Introduction
2. Test Material
2.1. Matrix Asphalt
2.2. Graphite and Graphite-Modified Asphalt
2.3. Biochar and Biochar-Modified Asphalt
3. Test Method
3.1. Rolling Thin Film Oven (RTFO) Test
3.2. Pressure Aging Vessel (PAV) Test
3.3. Dynamic Shear Rheometer (DSR) Test
3.4. Electron Microscope (SEM) Test
4. Results and Analyses
4.1. Analysis of Viscoelastic Properties
4.2. Analysis of Rutting Resistance
4.3. Analysis of Fatigue Resistance
4.4. Analysis of Microstructure
4.5. Statistical Analysis
5. Conclusions
- Asphalt showed more obvious viscous characteristics with increasing temperature. The addition of biochar particles promoted the improvement of the elastic components of asphalt, and it increased with the increasing amount of biochar. Compared to asphalt PG 58-28, graphite-modified asphalt, and biochar-modified asphalt of large particle size, the elastic components of biochar-modified asphalt of small particle size was higher, whose viscoelastic properties were least affected by high temperature.
- The addition of biochar increased the critical high temperature of asphalt, and the rutting resistance of biochar-modified asphalt significantly increased with the increase in biochar mixing amount. The biochar-modified asphalt had better rutting resistance at high temperature than petroleum asphalt and graphite-modified asphalt, especially for the asphalt modified with biochar of small particle size.
- The fatigue cracking resistance of asphalt reduced with the addition of biochar. However, the fatigue resistance of 2% Wd was similar to or even better than that of petroleum asphalt, and 4% Wd had a similar fatigue cracking resistance to 4% Gd. The particle size of biochar had a significant influence on the fatigue resistance of biochar-modified asphalt. The binder modified with biochar of small particle size had better fatigue cracking resistance than the asphalt modified with biochar of large particle size.
- The biochar had a rougher surface and more pores than graphite, which provided its larger specific surface area. This made it easier to bond with asphalt to form a skeleton network structure, thus forming a more stable biochar–asphalt base structure. Therefore, biochar-modified asphalt showed better rutting resistance at high temperature.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Evaluation Index | Result | Specification Requirements | Specification |
---|---|---|---|
Specific gravity | 1.03 | - | - |
Rotational viscosity (135 °C, Pa·s) | 0.350 | <3.0 | AASHTO T316-13 |
Rutting resistance factor of the original asphalt G*/sinδ (58 °C) (kPa) | 1.995 | >1.0 | AASHTO T315-12 |
Rutting resistance factor of aging asphalt after RTFOT G*/sinδ (58 °C) (kPa) | 5.018 | >2.2 | AASHTO T315-12 |
m-value (−18 °C) | 0.31 | >3.0 | AASHTO T313-12 |
Asphalt Type | Instruction |
---|---|
PG 58-28 | Petroleum asphalt |
2% WD | Biochar-modified asphalt, with 2% of biochar mixing amount, in 75–150 μm particle size |
4% WD | Biochar-modified asphalt, with 4% of biochar mixing amount, in 75–150 μm particle size |
8% WD | Biochar-modified asphalt, with 8% of biochar mixing amount, in 75–150 μm particle size |
2% Wd | Biochar-modified asphalt, with 2% of biochar mixing amount, in 0–75 μm particle size |
4% Wd | Biochar-modified asphalt, with 4% of biochar mixing amount, in 0–75 μm particle size |
8% Wd | Biochar-modified asphalt, with 8% of biochar mixing amount, in 0–75 μm particle size |
4% Gd | Graphite-modified asphalt, with 4% of biochar mixing amount, in 0–75 μm particle size |
Source | df | Mean Square | Statistic Value (F) | Significance Probability (p) |
---|---|---|---|---|
Corrected model | 10 | 57.482 | 129.509 | 0.000 |
Intercept | 1 | 247,350.122 | 557,285.216 | 0.000 |
Type of modifier | 1 | 0.172 | 0.388 | 0.535 |
Mixing amount of biochar | 2 | 0.986 | 2.222 | 0.116 |
Particle size of biochar | 1 | 0.491 | 1.106 | 0.297 |
Source | df | Mean Square | Statistic Value (F) | Significance Probability (p) |
---|---|---|---|---|
Corrected model | 7 | 8.709 | 43.976 | 0.000 |
Intercept | 1 | 52,912.657 | 267,169.545 | 0.000 |
Type of modifiers | 1 | 8.789 | 44.379 | 0.000 |
Mixing amount of biochar | 2 | 10.056 | 50.775 | 0.000 |
Particle size of biochar | 1 | 3.721 | 18.788 | 0.000 |
Source | df | Mean Square | Statistic Value (F) | Significance Probability (p) |
---|---|---|---|---|
Corrected model | 9 | 18,420,737.266 | 28.445 | 0.000 |
Intercept | 1 | 100,839,554.363 | 155.714 | 0.000 |
Type of modifiers | 1 | 20,424.173 | 0.032 | 0.860 |
Mixing amount of biochar | 2 | 6,459,913.709 | 9.975 | 0.000 |
Particle size of biochar | 1 | 6,210,405.133 | 9.590 | 0.004 |
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Zhang, R.; Wang, H.; Ji, J.; Wang, H. Viscoelastic Properties, Rutting Resistance, and Fatigue Resistance of Waste Wood-Based Biochar-Modified Asphalt. Coatings 2022, 12, 89. https://doi.org/10.3390/coatings12010089
Zhang R, Wang H, Ji J, Wang H. Viscoelastic Properties, Rutting Resistance, and Fatigue Resistance of Waste Wood-Based Biochar-Modified Asphalt. Coatings. 2022; 12(1):89. https://doi.org/10.3390/coatings12010089
Chicago/Turabian StyleZhang, Ran, Haoxiang Wang, Jie Ji, and Hainian Wang. 2022. "Viscoelastic Properties, Rutting Resistance, and Fatigue Resistance of Waste Wood-Based Biochar-Modified Asphalt" Coatings 12, no. 1: 89. https://doi.org/10.3390/coatings12010089
APA StyleZhang, R., Wang, H., Ji, J., & Wang, H. (2022). Viscoelastic Properties, Rutting Resistance, and Fatigue Resistance of Waste Wood-Based Biochar-Modified Asphalt. Coatings, 12(1), 89. https://doi.org/10.3390/coatings12010089