Aging Behavior of High-Viscosity Modified Asphalt Binder Based on Infrared Spectrum Test
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Complex Aging Simulation Method
2.3. FTIR Spectroscopy Test
2.4. Experiment Plan
3. Results
3.1. The Effect of UV Intensity on Aging
3.2. The Effect of Temperature on Aging
3.3. The Effect of Water Environment on Aging
3.4. Variance Analysis
3.5. Aging Kinetic Model of High-Viscosity Modified Asphalt
- Ea: activation energy;
- A: Pre-reference factor;
- T: Kelvin temperature;
- R: Molar gas constant;
- c: A functional group index;
- k: Reaction rate constant at temperature T;
- t: Aging time.
4. Conclusions
- (1)
- Compared with the unaged high-viscosity modified asphalt, the increase in UV irradiance, the increase in temperature and the change of water quality cannot make the high-viscosity modified asphalt generate new functional groups. Under the three environmental factors, the high-viscosity modified asphalt has no chemical reaction, only physical changes.
- (2)
- When studying ultraviolet aging, it is more obvious to use the carbonyl index as the evaluation index, while the sulfoxide group is more sensitive to temperature, and it is more appropriate to use the sulfoxide index as the heat aging evaluation index.
- (3)
- The aging kinetic model established with the carbonyl index as a parameter has greater activation energy, and the established model is more suitable for traditional indoor simulation of thermal-oxidative aging.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Li, H.; Ding, L.; Ren, M.; Li, C.; Wang, H. Sponge City Construction in China: A Survey of the Challenges and Opportunities. Water 2017, 9, 594. [Google Scholar] [CrossRef] [Green Version]
- Li, Z.; Cao, Y.; Zhang, J.; Liu, W. Urban Rainfall Characteristics and Permeable Pavement Structure Optimization for Sponge Road in North China. Water Sci. Technol. 2021, 83, 1932–1945. [Google Scholar] [CrossRef] [PubMed]
- Wu, B.; Luo, C.; Pei, Z.; Chen, C.; Xia, J.; Xiao, P. Evaluation of the Aging of Styrene-Butadiene-Styrene Modified Asphalt Binder with Different Polymer Additives. Materials 2021, 14, 5715. [Google Scholar] [CrossRef] [PubMed]
- Zhang, F.; Hu, C. The Composition and Ageing of High-Viscosity and Elasticity Asphalts. Polym. Compos. 2017, 38, 2509–2517. [Google Scholar] [CrossRef]
- Ma, X.; Li, Q.; Cui, Y.; Ni, A. Performance of Porous Asphalt Mixture with Various Additives. Int. J. Pavement Eng. 2018, 19, 355–361. [Google Scholar] [CrossRef]
- Cai, J.; Song, C.; Zhou, B. Investigation on high-viscosity asphalt binder for permeable asphalt concrete with waste materials. J. Clean. Prod. 2019, 228, 40–51. [Google Scholar] [CrossRef]
- Geng, L.; Xu, Q.; Ren, R.; Wang, L.; Yang, X.; Wang, X. Performance Research of High-Viscosity Asphalt Mixture as Deck-Paving Materials for Steel Bridges. Road Mater. Pavement 2017, 18, 208–220. [Google Scholar] [CrossRef]
- Luo, Y.; Zhang, K.; Li, P.; Yang, J.; Xie, X. Performance Evaluation of Stone Mastic Asphalt Mixture with Different High Viscosity Modified Asphalt Based on Laboratory Tests. Constr. Build. Mater. 2019, 225, 214–222. [Google Scholar] [CrossRef]
- Li, Q.; Zeng, X.; Wang, J.; Luo, S.; Meng, Y.; Gao, L. Aging performance of high viscosity modified asphalt under complex heat-light-water coupled conditions. Constr. Build. Mater. 2022, 325, 126314. [Google Scholar] [CrossRef]
- Yang, J.; Zhang, Z.; Shi, J.; Yang, X.; Fang, Y. Comparative Analysis of Thermal Aging Behavior and Comprehensive Performance of High Viscosity Asphalt (HVA) from Cohesion, Adhesion and Rheology Perspectives. Constr. Build. Mater. 2022, 317, 125982. [Google Scholar] [CrossRef]
- Hu, M.; Sun, G.; Sun, D.; Lu, T.; Ma, J.; Deng, Y. Accelerated Weathering Simulation on Rheological Properties and Chemical Structure of High Viscosity Modified Asphalt: A Temperature Acceleration Effect Analysis. Constr. Build. Mater. 2021, 268, 121120. [Google Scholar] [CrossRef]
- Li, Y.; Wu, S.; Liu, Q.; Dai, Y.; Li, C.; Li, H.; Nie, S.; Song, W. Aging Degradation of Asphalt Binder by Narrow-Band UV Radiations with a Range of Dominant Wavelengths. Constr. Build. Mater. 2019, 220, 637–650. [Google Scholar] [CrossRef]
- Zou, Y.; Amirkhanian, S.; Xu, S.; Li, Y.; Wang, Y.; Zhang, J. Effect of Different Aqueous Solutions on Physicochemical Properties of Asphalt Binder. Constr. Build. Mater. 2021, 286, 122810. [Google Scholar] [CrossRef]
- Hou, X.; Lu, S.; Chen, Z.; Xiao, F. Applications of Fourier Transform Infrared Spectroscopy Technologies on Asphalt Materials. Measurement 2018, 121, 304–316. [Google Scholar] [CrossRef]
- Singh, B.; Saboo, N.; Kumar, P. Use of Fourier transform infrared spectroscopy to study ageing characteristics of asphalt binders. Petrol. Sci. Technol. 2017, 35, 1648–1654. [Google Scholar] [CrossRef]
- Yang, X.; You, Z.; Mills-Beale, J. Asphalt binders blended with a high percentage of bio-binders: Aging mechanism using FTIR and rheology. J. Mater. Civ. Eng. 2015, 27, 401–415. [Google Scholar] [CrossRef]
- Yao, H.; Dai, Q.; You, Z. Fourier Transform Infrared Spectroscopy Characterization of Aging-Related Properties of Original and Nano-Modified Asphalt Binders. Constr. Build. Mater. 2015, 101, 1078–1087. [Google Scholar] [CrossRef]
- Singh, B.; Kumar, P. Effect of Polymer Modification on the Ageing Properties of Asphalt Binders: Chemical and Morphological Investigation. Constr. Build. Mater. 2019, 205, 633–641. [Google Scholar] [CrossRef]
- Zhang, F.; Hu, C.; Zhuang, W. The Research for Low-Temperature Rheological Properties and Structural Characteristics of High-Viscosity Modified Asphalt. J. Therm. Anal. Calorim. 2018, 131, 1025–1034. [Google Scholar] [CrossRef]
- Yang, B.; Wei, J.; Xie, J.; Zhao, Z. Aging Kinetic Equation of Pure Asphalt and Trinidad-Lake-Asphalt-Modified Asphalt. Sci. Adv. Mater. 2017, 9, 1081–1086. [Google Scholar] [CrossRef]
Asphalt Types | Penetration 25 °C (0.1 mm) | Softening Point (°C) | 5 °C Ductility (cm) | 60 °C Dynamic Viscosity (Pa·s) |
---|---|---|---|---|
SBS | 64 | 71.2 | 36.5 | 5015 |
HVA | 44.3 | 86.4 | 45.3 | 73,527 |
Project | Unit | Results | Standard |
---|---|---|---|
Particle size | mm | 4.2 | JT/T 860.2 |
Density | g/cm3 | 0.8 | GB/T1033 |
Absorption | % | 0.6 | - |
Asphalt Specimen | UV Irradiance (w/cm2) | Temperature (°C) | Water Environment |
---|---|---|---|
O-HVA | / | / | / |
ULTLSN | 10.14 × 10−4 | 90 | neutral |
UMTLSN | 13.28 × 10−4 | 90 | neutral |
UHTLSN | 17.38 × 10−4 | 90 | neutral |
UHTMSN | 17.38 × 10−4 | 100 | neutral |
UHTHSN | 17.38 × 10−4 | 110 | neutral |
UHTLSA | 17.38 × 10−4 | 90 | acidic |
UHTLSALK | 17.38 × 10−4 | 90 | alkaline |
Wavenumber (cm−1) | Spectral Peak Attribution |
---|---|
2924 | Asymmetric stretching vibration of C-H in methylene |
2852 | Symmetrical stretching vibration of C-H in methylene |
2729 | Stretching vibration of aldehyde group |
1686 | C=O stretching vibration |
1671 | C=O stretching vibration of primary amide carbonyl |
1600 | Respiratory vibration of asymmetrically substituted benzene ring |
1461 | Scissor vibration of methylene (—CH2—) |
1377 | Umbrella vibration of methyl (—CH3—) |
1031 | Stretching vibration of sulfoxide group (S=O) |
812\868 | Stretching vibration of benzene ring |
747 | Bending vibration of aromatic branched chain |
722 | Synergistic vibration of methylene segment (CH2) n (n ≥ 4) |
Project | Deviation Sum of Squares | Degree of Freedom | Mean Square Error | F | p |
---|---|---|---|---|---|
(1) Aliphatic index | |||||
UV intensity | 2.16 × 10−4 | 3 | 2.16 × 10−4 | 2.892 | 0.012 |
Temperature | 1.29 × 10−3 | 3 | 1.29 × 10−3 | 55.099 | 0.011 |
Water environment | 1.12 × 10−3 | 3 | 1.12 × 10−3 | 53.556 | 0.012 |
(2) Aromatic Index | |||||
UV intensity | 2.81 × 10−5 | 3 | 2.81 × 10−5 | 2.770 | 0.013 |
Temperature | 4.33 × 10−4 | 3 | 4.33 × 10−4 | 16.673 | 0.015 |
Water environment | 1.70 × 10−4 | 3 | 1.70 × 10−4 | 46.286 | 0.011 |
(3) Carbonyl Index | |||||
UV intensity | 7.26 × 10−4 | 3 | 7.26 × 10−4 | 3.967 | 0.004 |
Temperature | 4.98 × 10−3 | 3 | 4.98 × 10−3 | 61.796 | 0.013 |
Water environment | 7.70 × 10−3 | 3 | 7.70 × 10−3 | 62.551 | 0.013 |
(4) Sulfoxide Index | |||||
UV intensity | 6.01 × 10−5 | 3 | 6.01 × 10−5 | 31.852 | 0.025 |
Temperature | 4.86 × 10−4 | 3 | 4.86 × 10−4 | 15.429 | 0.007 |
Water environment | 5.80 × 10−4 | 3 | 5.80 × 10−4 | 26.173 | 0.012 |
Kinetic Parameters | Aging Temperature (°C) | k | A | Ea (kJ·mol) |
---|---|---|---|---|
Ic | 90 | 0.0650 | 771.16 | 28.47 |
100 | 0.0795 | |||
110 | 0.1010 | |||
Is | 90 | 0.1095 | 8.600 | 13.28 |
100 | 0.1156 | |||
110 | 0.1342 |
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Zhang, W.; Li, Q.; Wang, J.; Meng, Y.; Zhou, Z. Aging Behavior of High-Viscosity Modified Asphalt Binder Based on Infrared Spectrum Test. Materials 2022, 15, 2778. https://doi.org/10.3390/ma15082778
Zhang W, Li Q, Wang J, Meng Y, Zhou Z. Aging Behavior of High-Viscosity Modified Asphalt Binder Based on Infrared Spectrum Test. Materials. 2022; 15(8):2778. https://doi.org/10.3390/ma15082778
Chicago/Turabian StyleZhang, Wenxuan, Qiang Li, Jiaqing Wang, Yuanpeng Meng, and Zhou Zhou. 2022. "Aging Behavior of High-Viscosity Modified Asphalt Binder Based on Infrared Spectrum Test" Materials 15, no. 8: 2778. https://doi.org/10.3390/ma15082778
APA StyleZhang, W., Li, Q., Wang, J., Meng, Y., & Zhou, Z. (2022). Aging Behavior of High-Viscosity Modified Asphalt Binder Based on Infrared Spectrum Test. Materials, 15(8), 2778. https://doi.org/10.3390/ma15082778