Effect of Binary Blended Fillers on the Durability Performance of Recycled Cold-Mix Asphalt
Abstract
:1. Introduction
2. Materials and Methodology
2.1. Materials
2.1.1. Aggregates and RAP
2.1.2. Filler Additives
2.1.3. Binder (Emulsion)
2.2. Methodology
- P = % by weight of the emulsion content based on the dry aggregate weight;
- a = % of the retained aggregate weight on the 2.36 mm sieve;
- b = % of the aggregate passing 2.36 mm and retained on 0.075 mm;
- c = % of the aggregate passing 0.075 mm.
- X = the bitumen present in the emulsion (60%).
- Pnb = the new bituminous binder to be added as per Asphalt Institute (2007) MS-20.
- r = % of virgin aggregate to be added to the recycled mix.
- Psb = the average bitumen content in the RAP.
3. Result and Discussion
3.1. Marshall Stability
3.2. Marshall Quotient
3.3. Indirect Tensile Strength
3.4. Resilient Modulus
3.5. Cantabro Abrasion Loss
3.6. Statistical Analysis
4. Conclusions
- RAP incorporation in cold-mix asphalt will reduce the initial binder content and provide better a Marshall strength, indirect tensile strength, and resilient modulus. However, the abrasion and raveling resistance deteriorated.
- Incorporating different binary blended fillers increases Marshall’s stability; however, the optimum dosage of BBFs is based on the type of material/aggregate used. The binary blended fillers have some active reactions in the presence of moisture, eventually improving the binder matrix and Marshall’s stability. The findings confirm that the BBF incorporation imparts higher shear stress and deformation resistance.
- Improvement in indirect tensile strength was observed with the BBF incorporation, and this might be due to the hygroscopic nature of the BBFs, which absorb moisture and initiate the hydration process, which, in turn, forms a secondary binder. This secondary binder forms a firm cement–bitumen paste, which binds the cold mix’s internal structure.
- RAP incorporation does not significantly alter the moisture resistance of the cold mixes. However, significant improvement in the ITR was observed post-BBF incorporation. SR was the best-performing BBF for the natural mixes in terms of the ITR. However, cement was the best-performing BBF for the RAP mixes compared to FA and SR.
- RAP incorporation does increase the Mr value of the cold mix; however, this improvement was not more significant. Furthermore, due to the formation of a strong binder–filler matrix, the Mr was higher than in the control mix.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
CMA | Cold-Mix Asphalt | CM3C | CM with 3% C |
50R | 50% RAP | CM3FA | CM with 3% FA |
50R1C | 50% RAP with 1% C | CM3SR | CM with 3% SR |
50R1FA | 50% RAP with 1% FA | FA | Fly Ash |
50R1SR | 50% RAP with 1% SR | HMA | Hot-Mix Asphalt |
50R2C | 50% RAP with 2% C | IEC | Initial Emulsion Content |
50R2FA | 50% RAP with 2% FA | IRC | Indian Roads Congress |
50% RAP with 2% SR | ITR | Indirect Tensile Ratio | |
50R3C | 50% RAP with 3% C | ITS | Indirect Tensile Strength |
50R3FA | 50% RAP with 3% FA | MORTH | Ministry of Road Transport and Highways |
50R3SR | 50% RAP with 3% SR | MQ | Marshall Quotient |
ANOVA | Analysis of Variance | Mr | Resilient Modulus |
BBFs | Binary Blended Fillers | NH | National Highway |
C | Cement | OAC | Optimum Asphalt Content |
P | Emulsion Content | ||
CBEM | Cold Bituminous Emulsion Mixtures | RAP | Reclaimed Asphalt Pavement |
CM | Control Mix | RCA | Recycled Concrete Aggregates |
CM1C | CM with 1% C | RCMA | Recycled Cold-Mix Asphalt |
CM1FA | CM with 1% FA | SR | Stabil-road |
CM1SR | CM with 1% SR | VA | Virgin Aggregate |
CM2C | CM with 2% C | VMA | Voids in Mineral Aggregate |
CM2FA | CM with 2%FA | ||
CM2SR | CM with 2% SR |
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Mix | Emulsion Content (%), P | New Binder (%), Pnb | Initial Emulsion Content (%), IEC * | Optimum Emulsion Content (%) | Asphalt Residue (%) |
---|---|---|---|---|---|
Control Mix | 6.5 | - | 10.833 | 11 | 6.6 |
50R | 5.9 | 3.4 | 9.833 | 9 | 5.4 |
Mix | Sum of Squares (SSs) | Mean Square (MS) | F | p-Value | F Critical |
---|---|---|---|---|---|
CM | 30.55503 | 3.305 | 3.0066 | 0.01932 | 2.3928 |
50R | 25,655.85 | 2850.64986 | 29.67199 | 1.17 × 10−9 | 2.392814 |
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Meena, P.; Rongmei Naga, G.R.; Kumar, P.; Monu, K. Effect of Binary Blended Fillers on the Durability Performance of Recycled Cold-Mix Asphalt. Sustainability 2024, 16, 4908. https://doi.org/10.3390/su16124908
Meena P, Rongmei Naga GR, Kumar P, Monu K. Effect of Binary Blended Fillers on the Durability Performance of Recycled Cold-Mix Asphalt. Sustainability. 2024; 16(12):4908. https://doi.org/10.3390/su16124908
Chicago/Turabian StyleMeena, Pinki, Gondaimei Ransinchung Rongmei Naga, Praveen Kumar, and Kumari Monu. 2024. "Effect of Binary Blended Fillers on the Durability Performance of Recycled Cold-Mix Asphalt" Sustainability 16, no. 12: 4908. https://doi.org/10.3390/su16124908
APA StyleMeena, P., Rongmei Naga, G. R., Kumar, P., & Monu, K. (2024). Effect of Binary Blended Fillers on the Durability Performance of Recycled Cold-Mix Asphalt. Sustainability, 16(12), 4908. https://doi.org/10.3390/su16124908