Temperature Field Analytical Solution for OGFC Asphalt Pavement Structure
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Determination of Thermal Conductivity
3. Theory
3.1. Basic Temperature-Field Equation
- The structure of each layer is uniform and homogeneous, showing no obvious difference in either appearance or physical properties at each point.
- The cross-sectional temperature at the same depth is the same at different pavement locations, and the heat transfer is only in one dimension, along the longitudinal direction, without considering the transverse distribution of the pavement-structure temperature field and transverse transfer of heat flow.
- The materials of each layer of pavement are closely combined, and there is no temperature-field fault; the interlayer temperature and heat flow are continuous; and the heat accumulation phenomenon is not evident and can be ignored.
3.2. Boundary Conditions
3.3. Initial Conditions and Simultaneous Equations
4. Determining the Temperature Field
4.1. Temperature Field Caused by the Initial Conditions
4.2. Temperature Field Caused by the Forced Conditions
5. Verification of the Analytical Solution
6. Conclusions
- The relationship between the oil–stone ratio and thermal conductivity of the OGFC asphalt mixture was determined, and a quadratic function was fit to the resulting equation.
- Mathematical and physical methods—including the separation of variables and the homogenization principle—were used to solve the temperature field caused by the forced and initial conditions. An analytical solution of the temperature field of the OGFC asphalt pavement structure in the form of a Fourier series was then obtained. The analytical solution of the OGFC asphalt pavement temperature field contained three independent variables: time, depth, and oil–stone ratio.
- The analytical solution of the OGFC asphalt pavement temperature field was a composite polynomial comprising exponential and trigonometric functions in the form of a Fourier-series expansion. There were many physical and meteorological parameters in the analytical solution to describe radiation, sunshine, and other changes in the external environment as well as the properties of the pavement structure.
- Large Marshall specimens were used as the research objects for the outdoor test. The experimental results were then compared with the analytical-solution prediction model, with the calculated results being the same as those of the actual temperature field.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Index | Unit | Test Result |
---|---|---|
25 °C penetration | 0.1 mm | 88.2 |
Softening point | °C | 49.2 |
15 °C ductility | cm | >150 |
60 °C viscosity | Pa·S | 228.5 |
35 °C viscosity | Pa·S | 0.334 |
Flash point | °C | 323 |
Temperature (°C) | Curve Fit of Thermal Conductivity to Oil–Stone Ratio | R2 |
---|---|---|
20 | 0.96826 | |
40 | 0.97849 | |
60 | 0.98461 |
Parameters | Unit | Numerical Value |
---|---|---|
Convective heat-transfer coefficient B | kJ/m2·h·°C | 46.024 |
Density of OGFC asphalt concrete | kg/m3 | 2100 |
Specific heat capacity of OGFC asphalt concrete c | J/(kg·°C) | 1.0985 |
Wind speed v | km/h | 1.325 |
Daily maximum temperature in winter | °C | 4 |
Daily minimum temperature in winter | °C | −21 |
Total daily radiation in winter | kJ/m3 | 7600 |
Initial phase | h | 9 |
Maximum sunshine hours in winter months | h | 5.2 |
Maximum sunshine hours in the longest month | h | 11.4 |
Radiation absorptivity | % | 0.87 |
Underground constant temperature in winter | °C | 5 |
Initial conditions of temperature field in winter | - | 1 |
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Qi, L.; Yu, B.; Zhao, Z.; Zhang, C. Temperature Field Analytical Solution for OGFC Asphalt Pavement Structure. Coatings 2023, 13, 1172. https://doi.org/10.3390/coatings13071172
Qi L, Yu B, Zhao Z, Zhang C. Temperature Field Analytical Solution for OGFC Asphalt Pavement Structure. Coatings. 2023; 13(7):1172. https://doi.org/10.3390/coatings13071172
Chicago/Turabian StyleQi, Lin, Baoyang Yu, Zhonghua Zhao, and Chunshuai Zhang. 2023. "Temperature Field Analytical Solution for OGFC Asphalt Pavement Structure" Coatings 13, no. 7: 1172. https://doi.org/10.3390/coatings13071172
APA StyleQi, L., Yu, B., Zhao, Z., & Zhang, C. (2023). Temperature Field Analytical Solution for OGFC Asphalt Pavement Structure. Coatings, 13(7), 1172. https://doi.org/10.3390/coatings13071172