Application of Mastic Asphalt Waterproofing Layer in High-Speed Railway Track in Cold Regions
Abstract
:1. Introduction
2. Material Design and Evaluation
2.1. Materials
2.2. Laboratory Tests
2.2.1. Specimen Preparation
2.2.2. Lueer Fluidity
2.2.3. Permeation Test
2.2.4. Low Temperature Bending Test
2.2.5. Rutting Test
2.2.6. Interface Bond Strength Test
2.3. Test Results and Discussion
3. Construction of Test Section
3.1. Material Preparation and Paving
3.2. Joints Treatment
3.3. Water Content Monitoring System
4. Field Validation
4.1. Investigation of Surface Condition
4.2. Subgrade Water Content Monitoring Results
5. Conclusions
- Application of mastic asphalt significantly improves the waterproof performance of waterproofing layer beside the slab track system, and therefore helps to reduce freeze-thaw damage;
- MAWL outperforms conventional concrete waterproofing layer due to better cracking resistance, the observed cracks in MAWL are mostly short cracks caused by the expansion of construction joints in the concrete side slope;
- MAWL showed relatively high stability during the two years of investigation period, no obvious deterioration was observed in the test section;
- Construction joint failure is the key problem of existing discontinuous MAWL in slab track system, and further study is still needed to improve existing practices.
Author Contributions
Acknowledgments
Conflicts of Interest
References
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Indexes | Test Results | Requirements |
---|---|---|
Penetration (25 °C, 5 s, 100 g), 0.1 mm | 104 | >80 |
Penetration index (PI) | 0.60 | ≥−0.8 |
Ductility at 5 °C, cm | 72.8 | ≥40 |
Softening point (R & B), °C | 83 | ≥50 |
Dynamic viscosity at 135 °C, Pa·s | 1.771 | ≤3 |
Test Methods | Index (Unit) | Tested Value | Requirements |
---|---|---|---|
Lueer test | Fluidity (s) | 10.5 | 5–40 |
Air voids | Air void (%) | 1.8 | - |
Permeation test | Permeability coefficient (ml/min) | 3 | - |
Three-point bending beam test | Failure strain (−10 °C, με) | 5641 | >3000 |
Rutting test | Dynamic stability (times/mm) | 2548 | >2000 |
Slant shear test | Shear strength (25 °C, MPa) | 2.01 | - |
Test Methods | Index (Unit) | Tested Value | Requirements | |
---|---|---|---|---|
Field | Laboratory | |||
Lueer test | Fluidity (s) | <20 | 10.5 | 5–40 |
Air voids of cores | Air void (%) | <1.13 | 1.8 | - |
Field permeation test | Permeability coefficient (mL/min) | <1 | 3 | - |
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Liu, S.; Yang, J.; Chen, X.; Yang, G.; Cai, D. Application of Mastic Asphalt Waterproofing Layer in High-Speed Railway Track in Cold Regions. Appl. Sci. 2018, 8, 667. https://doi.org/10.3390/app8050667
Liu S, Yang J, Chen X, Yang G, Cai D. Application of Mastic Asphalt Waterproofing Layer in High-Speed Railway Track in Cold Regions. Applied Sciences. 2018; 8(5):667. https://doi.org/10.3390/app8050667
Chicago/Turabian StyleLiu, Song, Jun Yang, Xianhua Chen, Guotao Yang, and Degou Cai. 2018. "Application of Mastic Asphalt Waterproofing Layer in High-Speed Railway Track in Cold Regions" Applied Sciences 8, no. 5: 667. https://doi.org/10.3390/app8050667
APA StyleLiu, S., Yang, J., Chen, X., Yang, G., & Cai, D. (2018). Application of Mastic Asphalt Waterproofing Layer in High-Speed Railway Track in Cold Regions. Applied Sciences, 8(5), 667. https://doi.org/10.3390/app8050667