A Systematic Review of Permeable Pavements and Their Unbound Material Properties in Comparison to Traditional Subbase Materials
Abstract
:1. Introduction
“It is very likely that heavy precipitation events will intensify and become more frequent in most regions with additional global warming. At the global scale, extreme daily precipitation events are projected to intensify by about 7% for each 1 °C of global warming (high confidence). The proportion of intense tropical cyclones (categories 4–5) and peak wind speeds of the most intense tropical cyclones are projected to increase at the global scale with increasing global warming (high confidence” [2].
- How should flooding be managed?
- How will the traditional way of doing pavement design change in the future?
2. Research Methodology
- American Society of Civil Engineering (ASCE)
- Elsevier
- Materials Science and Engineering
- SCOPUS
- Springer Link
- (a)
- “Permeable pavements” AND unbound base materials
- (b)
- “Permeable pavements” AND asphalt
- (c)
- Unbound granular subbase materials
- 1.
- Permeable pavements—design factors and applications
- 2.
- Bearing capacity in impermeable pavement design
- 3.
- Permeable subbase materials
- 4.
- How to design permeable pavements
3. Permeable Pavements—Design Factors and Applications
- 1.
- 2.
- 3.
- No infiltration—the subbase material is used as a reservoir. The subgrade consists of a high percentage of clay and/or silt fractions. The natural soil is therefore impermeable and no infiltration will occur. The subbase material is then used as a reservoir. If the subgrade is permeable and water is not allowed to infiltrate through due to regulations, a waterproof membrane can be placed upon the subgrade before laying out the subbase. The pavement structure is connected to a drainage system [10,21].
4. Bearing Capacity in Impermeable Pavement Design
- Dilatation—change in shape and compressibility.
- Distortion—sliding and rolling particles.
- Attrition—leading to breakage of the particles as the particles undergo stresses that exceed the strength.
4.1. Water in Roads and Resilient Response
4.2. Seasonal Variations
5. Permeable Subbase Materials
5.1. Stiffness of Permeable Subbase Materials
5.2. Hydraulic Conductivity
6. How to Design Permeable Pavements
- x = lowest frost degree in a 24 h period.
- k = total pavement thickness.
7. Conclusions
8. Future Research Needs
- How the coarse grained aggregate/permeable subbase material reacts in cold regions.
- The bearing capacity of the coarse grained aggregate when constructed in the field and:
- –
- in dry conditions;
- –
- in saturated conditions;
- –
- when the saturation level is higher than what is needed for the compaction;
- –
- in frost and cold weather.
Discussion of Future Research
- Weather analysis of how many coherent days are under 0 degrees in the past <20 years.
- Weather analysis of rain intensity and precipitation amounts in the past <20 years.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Selected Journals | (a) | (b) | (c) |
---|---|---|---|
Journal of Mechanical and Civil Engineering | 0 | 1 | 0 |
Transportation Research Board | 0 | 2 | 0 |
Journal of Environmental Engineering | 0 | 0 | 1 |
Journal of Transportation Engineering | 1 | 2 | 0 |
Journal of materials in Civil Engineering | 0 | 0 | 1 |
Water management | 0 | 0 | 1 |
International Journal of Pavement Engineering | 0 | 1 | 1 |
Road Materials and Pavement Design | 0 | 2 | 0 |
Construction and Building Materials | 1 | 0 | 0 |
Springer, book | 1 | 0 | 0 |
Sustainability | 0 | 0 | 1 |
Others (theses, dissertations, other journals, etc.) | 5 | 11 | 12 |
Total | 8 | 19 | 18 |
Porous asphalt/concrete | Driveways, residential streets/areas, low traffic areas, sidewalks |
Interlocking concrete paving | Parking lots, industrial storage areas, loading zones, parking pads |
Grid systems | Fire ways, parking pads in low traffic areas |
Permeability, k [m/s] | |
---|---|
AASHTO | 0.0201 |
Louisiana | 0.0016 |
MOD 1 | 0.026 |
MOD 2 | 0.038 |
FHWA | 0.058 |
Period | Days | Temperature [°C] | E | E | E | E |
---|---|---|---|---|---|---|
Winter | 49 | −2 | 4 | 4.2 | 10 | 20 |
Winter thaw | 10 | 1 | 3.7 | 0.3 | 10 | 20 |
Spring thaw | 15 | 1 | 3.7 | 0.7 | 0.7 | 0.6 |
Late spring | 46 | 4 | 3.1 | 1.0 | 0.8 | 0.8 |
Summer | 143 | 20 | 1.0 | 1.0 | 1.0 | 1.0 |
Heat wave | 10 | 50 | 0.3 | 1.0 | 1.0 | 1.0 |
Autumn | 92 | 7 | 2.6 | 1.0 | 1.0 | 1.0 |
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Muttuvelu, D.V.; Kjems, E. A Systematic Review of Permeable Pavements and Their Unbound Material Properties in Comparison to Traditional Subbase Materials. Infrastructures 2021, 6, 179. https://doi.org/10.3390/infrastructures6120179
Muttuvelu DV, Kjems E. A Systematic Review of Permeable Pavements and Their Unbound Material Properties in Comparison to Traditional Subbase Materials. Infrastructures. 2021; 6(12):179. https://doi.org/10.3390/infrastructures6120179
Chicago/Turabian StyleMuttuvelu, Dansani Vasanthan, and Erik Kjems. 2021. "A Systematic Review of Permeable Pavements and Their Unbound Material Properties in Comparison to Traditional Subbase Materials" Infrastructures 6, no. 12: 179. https://doi.org/10.3390/infrastructures6120179
APA StyleMuttuvelu, D. V., & Kjems, E. (2021). A Systematic Review of Permeable Pavements and Their Unbound Material Properties in Comparison to Traditional Subbase Materials. Infrastructures, 6(12), 179. https://doi.org/10.3390/infrastructures6120179