Aging Characterizations of Modified Asphalt Binders Based on Low Field Nuclear Magnetic Resonance (LF-NMR)
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Methods
2.2.1. Modification of Asphalt Binder
2.2.2. LF-NMR
- (1)
- For unaged asphalt binders, at first, heat an unaged asphalt binder of 100 g in a glass bottle to 135 °C. Second, pour the asphalt binder heated into a weighed empty chromatographic bottle with 1.5 mL to 1.0 mL grade. Then, weigh the fully filled chromatographic bottle again. Lastly, calculate the weight of the asphalt sample.
- (2)
- For aged asphalt binders, first, age the asphalt binders By RTFO and PAV, then follow the steps used for (1) for the rest of the steps.
2.2.3. Dynamic Shear Rheometer
2.2.4. Aging of Asphalt Binders
3. Results and Discussions
3.1. T2 of SBS Asphalt Binders Unaged
3.2. T2 of SBS Aged Asphalt Binders
3.3. T2 of CRM Asphalt Binders Unaged
3.4. T2 of Aged CRM Asphalt Binders
3.5. G*/sin (δ) of Modified Asphalt Binders
3.6. G*/sin (δ) and NPA of RTFOT Aged Asphalt Binders
4. Conclusions
- (1)
- Virgin asphalt binder had two peaks on the curves of amplitude and T2, i.e., “M” shaped, and the T2 time of the “M” shaped peak was within 2.2 ms. Modified asphalt binders also appeared with “M” shaped peaks within 2.2 ms and several peaks beyond 2.2 ms.
- (2)
- When T2 was greater than 2 ms, relaxation peaks appeared in both SBS and CRM asphalt T2 curves, but these peaks did not show up in the virgin asphalt binder. This may be caused by the signal of the modifier itself. Aging of the asphalt binders made peaks weaken and even disappear.
- (3)
- After RTFOT aging, the NPA of modified asphalt binders decreased as their contents of the modifiers increased, and the NPA of modified RTFOT residuals were much smaller than the unaged. RTFOT aging decreased the NPA of asphalt binders, but the results of PAV residuals and RTFOT residuals were different.
- (4)
- G*/sin (δ) increased as aging increased for both modified and unmodified asphalt binders. Moreover, the larger the SBS or CRM content was, the larger the change range was.
- (5)
- G*/sin (δ) and NPA are inversely proportional, inferring that changes in the rheology of asphalt binder can be characterized by directly total normalizing peak area.
- (6)
- All asphalt samples were only studied in the laboratory, but with the popularity of portable NMR devices, it is possible to directly measure the aging of asphalt pavements in situ, so as to achieve the goal of in-situ aging assessment of asphalt pavement over its lifetime.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Properties | Actual Value | Standard |
---|---|---|
Moisture/% | 0.8 | 0~2.0 |
Apparent density/g·cm−3 | 0.36 | 0.27~0.39 |
Ash/% | 7.4 | 0~8.5 |
Properties | Actual Value |
---|---|
Volatile matter/% | 1.0 |
300% Tensile stress/MPa | 2.0 |
Ash/% | 0.2 |
Elongation at break/% | 700 |
Melt flow rate/g/10 min | 0.01–0.50 |
Hardness | 68 |
Properties | Actual Value | Standard | Test Method |
---|---|---|---|
Penetration (25 °C)/dmm | 69 | 60–80 | T0604-2011 |
Softening point/°C | 47.4 | 46 min | T0606-2011 |
Ductility (10 °C)/cm | 45 | 20 min | T0605-2011 |
Ductility (15 °C)/cm | >150 | 100 min | T0605-2011 |
Flash point (COC)/°C | >260 | 260 min | T0611-2011 |
Solubility in TCE/%m | >99.8 | 99.5 min | T0607-2011 |
Wax/% | 1.75 | 2.2 max | T0615-2000 |
Viscosity (60 °C), Pa·s | 215 | 180 min | T0625-2011 |
TFOT, 163 °C, 5 h | |||
PG | PG64-22 | PG64-22 | AASHTO |
Loss by heating/%m | 0.01 | −0.8~0.8 | T0609-2011 |
Ductility (10 °C)/cm | 7 | 6 min | T0606-2011 |
Penetration of residue/%m | 65 | 61 min | T0604-2011 |
Type of Modifier | - | SBS | CRM | ||||||
---|---|---|---|---|---|---|---|---|---|
Dosage of modifier/% | 0 | 2.5 | 3.5 | 4.5 | 6 | 8 | 10 | 12 | 14 |
Unaged | a | b | c | d | e | f | g | h | i |
RTFOT | R-a | R-b | R-c | R-d | R-e | R-f | R-g | R-h | R-i |
PAV | P-a | P-b | P-c | P-d | P-e | P-f | P-g | P-h | P-i |
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Wang, L.; Li, X.; Shen, J.; Li, J.; Wang, W. Aging Characterizations of Modified Asphalt Binders Based on Low Field Nuclear Magnetic Resonance (LF-NMR). Materials 2022, 15, 8224. https://doi.org/10.3390/ma15228224
Wang L, Li X, Shen J, Li J, Wang W. Aging Characterizations of Modified Asphalt Binders Based on Low Field Nuclear Magnetic Resonance (LF-NMR). Materials. 2022; 15(22):8224. https://doi.org/10.3390/ma15228224
Chicago/Turabian StyleWang, Lili, Xinsheng Li, Junan Shen, Jing Li, and Wei Wang. 2022. "Aging Characterizations of Modified Asphalt Binders Based on Low Field Nuclear Magnetic Resonance (LF-NMR)" Materials 15, no. 22: 8224. https://doi.org/10.3390/ma15228224
APA StyleWang, L., Li, X., Shen, J., Li, J., & Wang, W. (2022). Aging Characterizations of Modified Asphalt Binders Based on Low Field Nuclear Magnetic Resonance (LF-NMR). Materials, 15(22), 8224. https://doi.org/10.3390/ma15228224