Emulsion Mixtures of Fractionated Reclaimed Asphalt Pavement and Quarry By-Products: A Laboratory Evaluation
Abstract
:1. Introduction
2. Objective and Scope
3. Materials
3.1. Aggregate Composition
3.2. Anionic Emulsion
3.3. Residual Asphalt Content
4. Methods
4.1. Indirect Tensile Strength and Tensile Strength Ratio
4.2. Resilient Modulus and Permanent Deformation
5. Results
5.1. Tensile Strength and Moisture Susceptibility
5.2. Anisotropic Moduli and Permanent Deformation Characterizations
6. Conclusions
- An increase in FRAP content resulted in an increase in the strength and moisture resistance of the bituminous EAMs. The EAM containing FRAP and QB (30R-70QB) exhibited the highest ITSDry and ITSWet values. These observations indicate a superior FRAP and QB aggregate interlock and compatibility with emulsion stabilization compared to crushed limestone.
- EAMs containing 50% or more FRAP content satisfied Asphalt Academy’s Tensile Strength Ratio (TSR) requirements, indicating sufficient moisture resistance under moisture intrusion.
- An appreciable increase in vertical resilient modulus was observed with the inclusion of 50% FRAP content in EAMs (50R-0QB). In addition, the introduction of FRAP material (25R-0QB, and 50R-0QB) increased the stiffness of EAMs for base layer applications.
- The higher anisotropic moduli ratios of the blends revealed that the EAMs prepared using FRAP (25R-0QB, and 50R-0QB) were less susceptible to deformation under principal stress reversals under a moving wheel load.
- Moreover, a significant reduction in permanent deformation of about 22% was observed in EAMs containing FRAP (50R-0QB and 25R-0QB) compared to the control mixture.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Mixture ID | Constituents | ||
---|---|---|---|
Crushed Limestone (%) | FRAP (%) | QB (%) | |
0R-0QB | 100 | 0 | 0 |
25R-0QB | 75 | 25 | 0 |
50R-0QB | 50 | 50 | 0 |
30R-70QB | 0 | 30 | 70 |
Mixture ID | Emulsion Content (%) |
---|---|
0R-0QB (Control) | 5.5 |
25R-0QB | 4.5 |
50R-0QB | 3.0 |
30R-70QB | 5.5 |
Sequence No. | Confining Pressure, σ3 | No. of Load Applications | |
---|---|---|---|
kPa | kPa | ||
0 | 103.4 | 103.4 | 1000 |
1 | 20.7 | 20.7 | 100 |
2 | 20.7 | 41.4 | 100 |
3 | 20.7 | 62.1 | 100 |
4 | 34.5 | 34.5 | 100 |
5 | 34.5 | 68.9 | 100 |
6 | 34.5 | 103.4 | 100 |
7 | 68.9 | 68.9 | 100 |
8 | 68.9 | 137.9 | 100 |
9 | 68.9 | 206.8 | 100 |
10 | 103.4 | 68.9 | 100 |
11 | 103.4 | 103.4 | 100 |
12 | 103.4 | 206.8 | 100 |
13 | 137.9 | 103.4 | 100 |
14 | 137.9 | 137.9 | 100 |
15 | 137.9 | 275.8 | 100 |
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Husain, S.F.; Qamhia, I.I.A.; Vyas, A.; Maia, R.S.; Tutumluer, E.; Hajj, R. Emulsion Mixtures of Fractionated Reclaimed Asphalt Pavement and Quarry By-Products: A Laboratory Evaluation. Sustainability 2023, 15, 10735. https://doi.org/10.3390/su151310735
Husain SF, Qamhia IIA, Vyas A, Maia RS, Tutumluer E, Hajj R. Emulsion Mixtures of Fractionated Reclaimed Asphalt Pavement and Quarry By-Products: A Laboratory Evaluation. Sustainability. 2023; 15(13):10735. https://doi.org/10.3390/su151310735
Chicago/Turabian StyleHusain, Syed Faizan, Issam I. A. Qamhia, Abhilash Vyas, Renan Santos Maia, Erol Tutumluer, and Ramez Hajj. 2023. "Emulsion Mixtures of Fractionated Reclaimed Asphalt Pavement and Quarry By-Products: A Laboratory Evaluation" Sustainability 15, no. 13: 10735. https://doi.org/10.3390/su151310735
APA StyleHusain, S. F., Qamhia, I. I. A., Vyas, A., Maia, R. S., Tutumluer, E., & Hajj, R. (2023). Emulsion Mixtures of Fractionated Reclaimed Asphalt Pavement and Quarry By-Products: A Laboratory Evaluation. Sustainability, 15(13), 10735. https://doi.org/10.3390/su151310735