Characterization of Steel Slag Filler and Its Effect on Aging Resistance of Asphalt Mastic with Various Aging Methods
Abstract
:1. Introduction
2. Materials and Specimens Preparation
2.1. Raw Materials
2.2. Preparation of Asphalt Mastic
- The asphalt and fillers were heated to target temperatures in the oven (AH-70 asphalt of 120 °C and fillers of 150 °C);
- Then, asphalt was removed to the containers kept in an oil bath to hold the temperature. Asphalt was pre-mixed with rotating speed limited at 500 rpm for 5 min;
- Fillers were added into a container gradually with consistent rotating speed. Until all the fillers were added, the speed was increased to 1500 rpm for 10 min;
- Finally, asphalt mastic was transferred to other containers for storage.
- Eventually, virgin asphalt (VA), steel slag fillers asphalt mastic (SSFA) and limestone fillers asphalt mastic (LFA) were prepared.
3. Research Methods
3.1. Material Characteristics of Fillers
3.2. Aging Methods
3.2.1. TFOT Short-Term Aging
3.2.2. Ultraviolet Aging
3.2.3. Solution Aging
3.3. Rheological Properties Test
3.4. Chemical Structure Test
3.5. Experimental Plan
4. Results and Discussion
4.1. Characterization of Fillers
4.1.1. Particle Size Distribution Analysis
4.1.2. Surface Characterization
4.1.3. Pore Characterization
4.2. Influence of Steel Slag Fillers on Asphalt Mastic of Rheological Properties
4.3. Influence of Steel Slag Fillers on Asphalt Mastic under Different Aging Methods and Its Mechanism
4.3.1. Rheological Properties
4.3.2. Self-Healing Properties
4.3.3. Chemical Functional Group Analysis
5. Conclusions
- (1)
- In comparison of LF, characterization of SSF indicated similarity but more uniform in particle size distribution, which is related to the preparation methods of the fillers. On the contrary, distinction in surface characterization and pore characterization of the fillers differs significantly. SSF performs rougher surface and more abundant pore characterization, whereas LF has a relatively smooth surface and dull pore characterization.
- (2)
- The addition of SSF and LF to asphalt binder results in an increment in the complex modulus and the properties of rutting resistance and fatigue resistance of asphalt mastic. The enhanced effect of SSF resembles that of LF, confirming the feasibility of replacement which was raised in previous research.
- (3)
- Under the same condition of aging time, SSFA performs better in the environment of acid solution and pure water, worse in the environment of alkali solution and NaCl solution, as opposed to the performance of LFA. The enrichment of f-CaO in SSF effects the orders of reaction with solutions, due to the fact that the f-CaO tends to conduct the processing more easily.
- (4)
- SSFA presents slightly poorer performance under the aging methods of TFOT/UV/TFOT+UV compared to LFA, which is caused by the pore structure in SSF reflecting less energy and refracting more energy more easily. More consumption of bitumen has the potential to improve the impact, and effective measurement to delay the impact needs further investigation in future research.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
List of Acronyms
Acronyms | Full Name |
LF | Limestone filler |
SSF | Steel slag filler |
VA | Virgin asphalt |
LFA | Limestone filler asphalt mastic |
SSFA | Steel slag filler asphalt mastic |
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Materials | Properties | Values | Specifications [28] |
---|---|---|---|
AH-70 asphalt | Penetration (25 °C, 0.1 mm) | 63.6 | 60~80 |
Ductility (15 °C, cm) | >100 | ≥40 | |
Softening point (°C) | 47.8 | 43 | |
Density (g/cm3) | 1.035 | - | |
Steel slag | Fine aggregate density (g/cm3) | 3.56 | ≥2.9 |
Coarse aggregate density (g/cm3) | 3.65 | ≥2.9 | |
Los Angeles abrasion | 8.3 | ≤28 | |
Crush values | 12.9 | ≤26 |
Properties | Steel Slag Fillers | Limestone Fillers | |
---|---|---|---|
Apparent specific gravity (g/cm3) | 3.640 | 2.708 | |
Size range | <0.6 mm | 100 | 100 |
<0.15 mm | 100 | 99.2 | |
<0.075 mm | 100 | 94.6 |
Pore Characteristics | Units | SSF | LF |
---|---|---|---|
BET surface area | m2/g | 1.2906 | 0.6448 |
Single point adsorption total pore volume of pores | cm3/g | 0.006174 | 0.002228 |
BJH desorption average pore diameter (4 V/A) | Å | 180.211 | 138.726 |
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Wei, M.; Wu, S.; Xu, H.; Li, H.; Yang, C. Characterization of Steel Slag Filler and Its Effect on Aging Resistance of Asphalt Mastic with Various Aging Methods. Materials 2021, 14, 869. https://doi.org/10.3390/ma14040869
Wei M, Wu S, Xu H, Li H, Yang C. Characterization of Steel Slag Filler and Its Effect on Aging Resistance of Asphalt Mastic with Various Aging Methods. Materials. 2021; 14(4):869. https://doi.org/10.3390/ma14040869
Chicago/Turabian StyleWei, Minghua, Shaopeng Wu, Haiqin Xu, Hechuan Li, and Chao Yang. 2021. "Characterization of Steel Slag Filler and Its Effect on Aging Resistance of Asphalt Mastic with Various Aging Methods" Materials 14, no. 4: 869. https://doi.org/10.3390/ma14040869
APA StyleWei, M., Wu, S., Xu, H., Li, H., & Yang, C. (2021). Characterization of Steel Slag Filler and Its Effect on Aging Resistance of Asphalt Mastic with Various Aging Methods. Materials, 14(4), 869. https://doi.org/10.3390/ma14040869