Experimental Investigation of Water Vapor Concentration on Fracture Properties of Asphalt Concrete
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Sample Preparation
2.3. Humidity Conditioning Program
2.4. Semi-Circular Bending Test
3. Results and Discussion
3.1. Load–Displacement Curve
3.2. Fracture Energy
3.3. Tensile Strength
3.4. Regression Analysis
4. Conclusions
- The humidity conditioning program was designed for the SCB specimens to study the impact of the RH levels of 2%, 50%, 80%, and 100% at 20 °C. The duration of the humidity curing period was determined by the finite element model, which simulated the water vapor diffusion until the equilibrium was reached.
- The load–displacement curve shows that the increase in RH level from 2% to 100% or the elevated temperature from 5 °C to 25 °C decreased the peak load but increased the displacement of the mixtures, which implies that the water vapor or higher temperature reduced the bearing capacity of mixture but improved the mixture toughness.
- The fracture energy showed a downward trend as the temperature increased for the three types of mixtures. Specifically, the AC-13C mixture had the highest fracture energy and showed the best toughness due to its use of the SBS-modified asphalt and higher asphalt content. Therefore, the use modified binders such as SBS-modified asphalt is recommended to enhance the durability of asphalt concrete, especially in regions with high humidity and temperature variations.
- With the rising RH levels, the fracture energy of the three types of mixtures increased since the water vapor enhanced the ductility of the mixture to some extent. Another reason is that the water vapor may alter the internal pore pressure of the mixture and help distribute the stress during loading.
- The tensile strength of the three types of mixtures declined with the increase in temperature, which indicates a reduction in the adhesion of the aggregate–asphalt interface with the higher temperature.
- As the RH level rose from 2% to 100% (i.e., the water vapor concentration rose from 0.35 g/m3 to 17.27 g/m3), the tensile strength of the three types of mixtures was reduced by 34.84% on average, which revealed that the water vapor led to the loss of adhesion and cohesion within the mixture.
- The GEP models were developed to quantify the effect of the water vapor concentration and temperature on the fracture indices. The R-squared values for the GEP models across the three types of mixtures were above 0.94, which indicates a good agreement between the GEP models and the fracture energy and tensile strength obtained from the SCB test.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Properties | Unit | Test Value | Specification | |
---|---|---|---|---|
Penetration (25 °C, 5 s, 100 g) | 0.1 mm | 55.0 | 40~60 | |
Ductility (5 °C, 5 cm/min) | cm | 27.0 | ≥20 | |
Softening point (TR&B) | °C | 76 | ≥75 | |
Density | g/cm3 | 1.03 | - | |
TFOT | Loss in mass | % | 0.10 | ≤±1.0 |
Reduction penetration (25 °C) | % | 71.0 | ≥65 | |
Ductility (5 °C, 5 cm/min) | cm | 17.0 | ≥15 |
Properties | Unit | Test Value | Specification | |
---|---|---|---|---|
Penetration (25 °C, 5 s, 100 g) | 0.1 mm | 68.0 | 60~80 | |
Ductility (5 °C, 5 cm/min) | cm | 36.0 | ≥20 | |
Softening point (TR&B) | °C | 47.0 | ≥46 | |
Density | g/cm3 | 1.04 | - | |
TFOT residue | Loss in mass | % | 0.03 | ≤±0.8 |
Reduction penetration (25 °C) | % | 75.0 | ≥61 | |
Ductility (10 °C, 5 cm/min) | cm | 15.0 | ≥6 |
Mixture Properties | AC-13C | AC-20C | AC-25C | |||
---|---|---|---|---|---|---|
Value | Specification | Value | Specification | Value | Specification | |
Optimal asphalt content | 4.8 | — | 4.5 | — | 3.9 | — |
Bulk specific gravity (g/cm3) | 2.412 | — | 2.457 | — | 2.492 | — |
Maximum specific gravity (g/cm3) | 2.694 | — | 2.571 | — | 2.586 | — |
Air void (Va)/% | 4.0 | 3~5 | 4.4 | 4~6 | 5.2 | 4~6 |
Air void in mineral aggregate (VMA)/% | 14.6 | ≥14 | 14.0 | ≥13 | 12.1 | ≥12 |
Air void filled with asphalt (VFA)/% | 71.3 | 65~75 | 68.4 | 65~75 | 69.7 | 65~75 |
Marshall Stability/kN | 18.2 | ≥8 | 14.7 | ≥8 | 11.5 | ≥8 |
Flow value/0.1 mm | 29.54 | 15~50 | 38.4 | 15~50 | 25.5 | 15~50 |
Mixture Type | Fracture Index | Expression | ||
---|---|---|---|---|
AC-13C | Fracture energy | y1 = 0.88x12 − 67.19x1 + 4.65x22 − 15.81x2 + 3204.96 | 0.9821 | 0.0488 |
Tensile strength | y2 = 0.005x12 − 0.371x1 − 0.058x2 + 8.799 | 0.9431 | 0.0317 | |
AC-20C | Fracture energy | y1 = −0.54x12 − 16.85x1 + 3.93x22 − 2.53x2 + 2592.53 | 0.9842 | 0.0465 |
Tensile strength | y2 = −0.008x12 − 0.032x1 − 0.006x22 + 0.015x2 + 8.672 | 0.9560 | 0.0414 | |
AC-25C | Fracture energy | y1 = −1.64x12 + 17.13x1 + 2.44x22 + 7.57x2 + 2117.36 | 0.9798 | 0.0394 |
Tensile strength | y2 = 0.007x12 − 0.404x1 − 0.003x22 + 0.001x2 + 7.545 | 0.9491 | 0.0271 |
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Chen, Y.; Huang, T.; Wen, X.; Zhang, K.; Li, Z. Experimental Investigation of Water Vapor Concentration on Fracture Properties of Asphalt Concrete. Materials 2024, 17, 3289. https://doi.org/10.3390/ma17133289
Chen Y, Huang T, Wen X, Zhang K, Li Z. Experimental Investigation of Water Vapor Concentration on Fracture Properties of Asphalt Concrete. Materials. 2024; 17(13):3289. https://doi.org/10.3390/ma17133289
Chicago/Turabian StyleChen, Yu, Tingting Huang, Xuqing Wen, Kai Zhang, and Zhengang Li. 2024. "Experimental Investigation of Water Vapor Concentration on Fracture Properties of Asphalt Concrete" Materials 17, no. 13: 3289. https://doi.org/10.3390/ma17133289
APA StyleChen, Y., Huang, T., Wen, X., Zhang, K., & Li, Z. (2024). Experimental Investigation of Water Vapor Concentration on Fracture Properties of Asphalt Concrete. Materials, 17(13), 3289. https://doi.org/10.3390/ma17133289