Critical Insights into White and Yellow Light Marks on Various Asphalt Pavements: A Comparative Analysis
Abstract
:1. Introduction
2. Materials and Methods
2.1. Database and Asphalt Type
- ▪
- 33 km of “Tama” type (SMA): This section is made up of coarse aggregate (type A basalt coarse aggregate), fine aggregate (type A fine limestone/dolomite aggregate, pre-screened to ensure that it contains no less than 60% sand-sized aggregate), melamine, bitumen (PG70-10 or PG76-10), and stabilizing fibers.
- ▪
- 10.0 km of DCG mixtures, using exclusively basalt aggregate: This section will be referred to as “Basalt”.
- ▪
- 22.1 km of DCG mixtures with a blend of basalt and dolomite aggregates: In this section, the coarse aggregate (retained on a 4.75 mm sieve) consists of a mix of at least 60% basalt aggregate by weight and, at most, 40% dolomite aggregate. Of this segment, 14.0 km have a known maintenance history. This section will be referred to as “Zebra”.
2.2. Statistical Analysis
3. Results
3.1. The “Zebra” Type of Asphalt Mixture
3.2. The “Basalt” Type of Asphalt Mixture
3.3. The “Tama” Type of Asphalt Mixture
3.4. Retroreflectivity Comparison of Three Types of Asphalt Pavement
3.5. Relationship between the Post-Painting Time and the Retroreflectivity Values for Three Types of Asphalt Pavement
3.6. Effect of Annual Average Daily Traffic (AADT)
3.6.1. Analysis of Annual Average Daily Traffic vs. Post-Painting Time
3.6.2. Analysis of Mean Values of Retroreflectivity vs. Post-Painting Time
3.6.3. Relationship between Mean Values of Retroreflectivity and Values of Average Cumulative AADT
4. Discussion
5. Conclusions
- This study investigates how the content of three asphalt mixtures affects the retroreflectivity of the road marks painted on the road surface.
- The results show that the retroreflectivity values of white road markings vary depending on the asphalt mixtures under study.
- Of the three mixtures tested—the “Basalt” and “Zebra” dense, coarse-graded mixtures, and the “Tama” stone mastic mixture—the “Basalt” mixture was the most effective in enhancing road marking visibility, with higher initial retroreflectivity values.
- A relationship between the annual average daily traffic (AADT) and retroreflectivity mean values was identified, following a fractional power pattern, as demonstrated by the high regression coefficient of the cross-correlation line between the calculated and measured retroreflectivity values.
- Data analysis uncovered a significant variation in the retroreflectivity values for the white and yellow road markings across the different asphalt mixtures.
- The asphalt mixture did not appear to affect the yellow road markings.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Mixture Type | Percentage Passing, mm | |||||
---|---|---|---|---|---|---|
19 | 12.5 | 9.5 | 4.75 | 2 | 0.075 | |
Tama | 100 | 90–95 | 25–30 | 20–25 | 15–25 | 8–11 |
Basalt | 100 | 82–94 | 56–72 | 36–50 | 5–9 | |
Zebra | 100 | 90–95 | 70–75 | 32–37 | 23–27 | 5–8 |
Mixture Type | Properties | |||
---|---|---|---|---|
Porosity, % | Minimum VMA, % | Remaining Strength, % | Filler/ Bitumen Ratio | |
Tama | 15–25 | 17 | 80 | 1.5–1.8 |
Basalt | 6–7.5 | 14–14.5 | 80 | 1.1–1.5 |
Zebra | 6–7.5 | 14–14.5 | 80 | 1.1–1.5 |
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Elias, W.; Abu Ahmad, M.; Frid, V. Critical Insights into White and Yellow Light Marks on Various Asphalt Pavements: A Comparative Analysis. Buildings 2024, 14, 2525. https://doi.org/10.3390/buildings14082525
Elias W, Abu Ahmad M, Frid V. Critical Insights into White and Yellow Light Marks on Various Asphalt Pavements: A Comparative Analysis. Buildings. 2024; 14(8):2525. https://doi.org/10.3390/buildings14082525
Chicago/Turabian StyleElias, Wafa, Moamar Abu Ahmad, and Vladimir Frid. 2024. "Critical Insights into White and Yellow Light Marks on Various Asphalt Pavements: A Comparative Analysis" Buildings 14, no. 8: 2525. https://doi.org/10.3390/buildings14082525
APA StyleElias, W., Abu Ahmad, M., & Frid, V. (2024). Critical Insights into White and Yellow Light Marks on Various Asphalt Pavements: A Comparative Analysis. Buildings, 14(8), 2525. https://doi.org/10.3390/buildings14082525