Laboratory Investigation of Compaction Characteristics of Plant Recycled Hot-Mix Asphalt Mixture
Abstract
:1. Introduction
2. Experiments
2.1. Raw Materials
2.2. Test Methods
2.2.1. Orthogonal Test Design
2.2.2. Gyration Compaction
2.3. Measurements
2.4. Field Compaction of RHMA Pavement
2.4.1. Introduction of Field-Tested Sections
2.4.2. Field Test of Compactness
3. Results and Discussion
3.1. Compaction Characteristics of the Recycled Asphalt Mixture
3.1.1. Compaction Characteristics
3.1.2. Range Analysis of the Orthogonal Test Results
3.2. Comparison on the Compactability of the Recycled Mixture in the Material Design
3.3. Compaction Mechanism of the Recycled Mixture
4. Summary and Conclusions
- (i)
- The results show that a finer aggregate gradation, a higher gyration temperature, a greater number of gyrations, and a higher RAP content up to 50% are effective for increasing the compactability of RHMA. The ease of compaction can be well described using the void content (VV), compaction energy index (CEI), slope of accumulated compaction energy (K), and lock point (LP).
- (ii)
- It was found that the compactability of RHMA depends most significantly on the aggregate gradation, followed by the RAP content. The gyration temperature was found to be correlated to the compactability with inferior influence, and the higher number of gyrations contributes to a better compactness. Furthermore, the established regression model proved to be effective for optimizing the gradation design of RHMA considering its compactability.
- (iii)
- During hot mixing, a higher RAP content results in a lower diffusion ratio of the RAP aggregate, and a low void content in residual RAP particles reduces the void of RHMA. Thus, it is easier to reach the designed void content of RHMA compared to mixtures with a lower RAP content. This conclusion is valid only after RAP is preheated properly before mixing, and it should be further proven by more experimental studies.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Penetration (0.1 mm) | Softening Point (°C) | Ductility at 5 °C (cm) | |
---|---|---|---|
SBS-modified asphalt | 48.1 | 74.9 | 30.0 |
Aged asphalt | 25.3 | 68.4 | 0.0 |
Test method | T 0604 | T 0606 | T 0605 |
Properties | Limestone | RAP Aggregates | Mineral Filler | Test Method | ||
---|---|---|---|---|---|---|
Coarse | Fine | Coarse | Fine | |||
Bulk-specific gravity (kg/m3) | 2751 | 2715 | 2720 | 2622 | 2648 | T0308 |
Flat-elongated particles (%) | 11.4 | - | 13.5 | - | - | T0311 |
Water absorption (%) | 0.5 | - | 0.4 | - | - | T0308 |
Crush value (%) | 12.6 | - | 14.2 | - | - | T0316 |
LA abrasion (%) | 22 | - | 24 | - | - | T0317 |
Levels | Factors | |||
---|---|---|---|---|
Aggregate Gradation | Content of RAP | Gyration Temperature | Number of Gyrations | |
1 | A (n = 2.479) | 10% | 160 °C | 75 |
2 | B (n = 2.505) | 30% | 140 °C | 100 |
3 | C (n = 2.529) | 50% | 120 °C | 150 |
Test | Gyration Parameters | Virgin Binder Content/% | |||
---|---|---|---|---|---|
Aggregate Gradation | Content of RAP/% | Gyration Temperature/°C | Number of Gyrations | ||
1 | A | 30 | 120 | 75 | 2.97 |
2 | A | 50 | 160 | 100 | 1.95 |
3 | B | 10 | 120 | 100 | 3.99 |
4 | B | 50 | 140 | 75 | 1.95 |
5 | B | 30 | 160 | 150 | 2.97 |
6 | C | 50 | 120 | 150 | 1.95 |
7 | C | 10 | 160 | 75 | 3.99 |
8 | A | 10 | 140 | 150 | 3.99 |
9 | C | 30 | 140 | 100 | 2.97 |
Parameters | Aggregate Gradation | RAP Content | Gyration Temperature | Number of Gyrations | CEI | Length | Layer |
---|---|---|---|---|---|---|---|
Section I | 2.412 | 30% | 150 °C | 100 | 287.3 | 80 m | Binder layer |
Section II | 2.501 | 546.4 | 30 m |
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Yang, J.; Sun, C.; Tao, W.; Gao, J.; Huang, B.; Zhang, J. Laboratory Investigation of Compaction Characteristics of Plant Recycled Hot-Mix Asphalt Mixture. Sustainability 2021, 13, 3005. https://doi.org/10.3390/su13063005
Yang J, Sun C, Tao W, Gao J, Huang B, Zhang J. Laboratory Investigation of Compaction Characteristics of Plant Recycled Hot-Mix Asphalt Mixture. Sustainability. 2021; 13(6):3005. https://doi.org/10.3390/su13063005
Chicago/Turabian StyleYang, Jiangang, Chen Sun, Wenjie Tao, Jie Gao, Bocheng Huang, and Jian Zhang. 2021. "Laboratory Investigation of Compaction Characteristics of Plant Recycled Hot-Mix Asphalt Mixture" Sustainability 13, no. 6: 3005. https://doi.org/10.3390/su13063005
APA StyleYang, J., Sun, C., Tao, W., Gao, J., Huang, B., & Zhang, J. (2021). Laboratory Investigation of Compaction Characteristics of Plant Recycled Hot-Mix Asphalt Mixture. Sustainability, 13(6), 3005. https://doi.org/10.3390/su13063005