An Experimental Study on Properties of Pre-Coated Aggregates Grouting Asphalt Concrete for Bridge Deck Pavement
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Aggregate Gradation
2.3. Grouting Scheme
3. Results
3.1. Optimum Grouting Materials for Pre-Coated Aggregates Grouting Asphalt Concrete
3.1.1. Viscosity–Temperature Tests
3.1.2. Rutting Tests
3.2. Mechanical Performance of PGAC
3.2.1. High-Temperature Stability
3.2.2. Low-Temperature Crack Resistance
3.2.3. Interfacial Bond Property
3.3. Microstructural Analysis
3.3.1. Contact Point Analysis
3.3.2. Inclination Analysis
4. Conclusions
- (1)
- The actual construction temperature of each binder was determined by the viscosity–temperature curve. By comparing the rutting resistance performance of PGAC prepared by six grouting materials, and considering the factors of dynamic stability and energy consumption, the Type-D grouting material (HV-modified asphalt binder mixed with mineral filler) was selected as the best grouting medium.
- (2)
- The dynamic stability for PGAC with Type-D grouting material reached 4406, which was significantly higher than that of GMA-10 used for the Hong Kong-Zhuhai-Macau Bridge deck pavement. The flexural tensile strength of PGAC was very close to that of GMA-10, but the maximum flexural strain of PGAC reached 7502 micro-strain, largely greater than that of GMA-10, which indicates that the PGAC had the same low-temperature crack resistance as GMA-10 but possesses better flexibility than GMA-10. Four-point bending experiments will be conducted in the subsequent research to verify the anti-fatigue performance of GAC against cyclic stress.
- (3)
- The interface bond strengths of PGAC on steel and cement concrete substrates were equivalent to those of GMA-10. The structure layer thickness of PGAC was recommended to be 4–6 cm. It is suggested to coat the waterproof material on the substrate before paving PGAC when the construction layer thickness exceeds 8 cm. The number of contact points and mean inclination of coarse aggregates for PGAC were superior to other typical aggregate mixtures, which means that the PGAC had a more stable skeleton structure.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Physical Properties | Asphalt Types | ||
---|---|---|---|
SBS | HV | SHV | |
Penetration at 25 °C (1/10 mm) | 54.4 | 48.1 | 42.8 |
R&B softening point (°C) | 88.6 | 93 | 102 |
Ductility at 5 °C (cm) | 32 | 31.5 | 30.5 |
Kinematic viscosity at 190 °C (Pa·s) | 0.2 | 0.32 | 2.0 |
Separation at 163 °C, 48 h (°C) | 1.0 | 1.5 | 1.5 |
Materials | Physical Properties | Test Results |
---|---|---|
Coarse Aggregate | Relative apparent density | 2.69 |
Water absorption | 0.20% | |
Aggregate crushed value | 20% | |
Los Angeles abrasion value | 26% | |
Flakiness and elongation index | 13% | |
Mineral Filler | Relative apparent density | 2.40 |
Moisture content | 0.12% |
Sieve Size (mm) | Percentage Passing (%) | |||||
---|---|---|---|---|---|---|
A | B | C | D | E | F | |
16 | 100 | 100 | 100 | 100 | 100 | 100 |
13.2 | 71.2 | 71.2 | 71.2 | 71.2 | 71.2 | 71.2 |
9.5 | 50.7 | 50.7 | 50.7 | 50.7 | 50.7 | 50.7 |
4.75 | 30.1 | 30.1 | 30.1 | 30.1 | 30.1 | 30.1 |
2.36 | 0 | 0 | 0 | 0 | 0 | 0 |
Asphalt binder | SBS | SBS | HV | HV | SHV | SHV |
Mineral filler (%) | 0 | 19.5 | 0 | 21.8 | 0 | 24.9 |
Asphalt content (%) | 21.8 | 15.3 | 22.0 | 15.8 | 22.6 | 16.6 |
Mixture Type | Flexural Tensile Strength/MPa | Maximum Flexural Strain/με | Stiffness Modulus/MPa |
---|---|---|---|
PGAC | 6.46 | 7502 | 861 |
GMA-10 | 6.94 | 3714 | 1867 |
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Xiao, Z.; Huang, W.; Wu, K.; Nie, G.; Hassan, H.M.Z.; Hu, B. An Experimental Study on Properties of Pre-Coated Aggregates Grouting Asphalt Concrete for Bridge Deck Pavement. Materials 2021, 14, 5323. https://doi.org/10.3390/ma14185323
Xiao Z, Huang W, Wu K, Nie G, Hassan HMZ, Hu B. An Experimental Study on Properties of Pre-Coated Aggregates Grouting Asphalt Concrete for Bridge Deck Pavement. Materials. 2021; 14(18):5323. https://doi.org/10.3390/ma14185323
Chicago/Turabian StyleXiao, Zhicheng, Wenke Huang, Kuanghuai Wu, Guihai Nie, Hafiz Muhammad Zahid Hassan, and Bei Hu. 2021. "An Experimental Study on Properties of Pre-Coated Aggregates Grouting Asphalt Concrete for Bridge Deck Pavement" Materials 14, no. 18: 5323. https://doi.org/10.3390/ma14185323
APA StyleXiao, Z., Huang, W., Wu, K., Nie, G., Hassan, H. M. Z., & Hu, B. (2021). An Experimental Study on Properties of Pre-Coated Aggregates Grouting Asphalt Concrete for Bridge Deck Pavement. Materials, 14(18), 5323. https://doi.org/10.3390/ma14185323