Effect of Crumb Rubber, Epolene (EE-2), and Date Palm Ash as Modifiers on the Performance of Binders and Mixtures: A Sustainable Approach
Abstract
:1. Introduction
2. Experimental Design
2.1. Materials
2.2. Sample Preparation
2.3. Viscosity Test
2.4. Dynamic Shear Rheometer Tests
2.5. Performance Tests on Marshal Samples
3. Results and Discussion
3.1. Viscosity of Binders
3.2. Elasticity of Modified Bitumen (CR, EE-2, and DPA)
3.3. Rutting Resistance of Modified Bitumen (CR, EE-2, and DPA)
3.4. Marshall Stability and Flow
3.5. Marshall Quotient
3.6. Retained Stability
3.7. Indirect Tensile Strength of Asphalt Mixtures
4. Conclusions
- There was a slight reduction in the viscosity of the binder modified with 4%, 8%, and 12% EE-2 and DPA as compared to the base bitumen. This will result in better workability and lower energy consumption during the mixing process. Meanwhile, CR-modified bitumen results in an increase in the viscosity of the binder. However, the viscosity of binder modified with 4%, 8%, and 12% CR was still below the Superpave specifications (viscosity ≤ 3 Pa.s) and can be used as bitumen replacement up to 12% by weight of bitumen.
- The visco-elastic behavior of binder was significantly affected by the increase in the temperature and percentage of CR, EE-2, and DPA as a bitumen replacement. The modified binders showed improved elasticity, as compared to the base bitumen, due to the increase in complex modulus (G*) and the reduction in the phase angle values. Similarly, the increase in temperature caused a decline in the complex modulus because of the viscous behavior of bitumen.
- Binders modified with CR, EE-2, and DPA had significantly improved SHRP rutting parameters (G*/Sinδ) at high temperature. At a temperature of 70 °C, all modified binders met the minimum requirement for rutting resistance. However, 4% EE-2 and 4% DPA did not meet the minimum requirement at 76 °C. Furthermore, the high-temperature performance grade of base binder (PG64-10) improved to PG76 for 8%–16% CR, EE-2, and DPA.
- The binder modified with CR (8%–12%), EE-2 (8%–12%), and DPA (12%–16%) also met the minimum SHRP rutting criteria (G*/Sinδ ≥ 1 kPa) at the highest temperature (82 °C). Therefore, these modified binders can be used in flexible pavement construction in the hottest KSA regions.
- The Marshall stability and Marshall quotient values showed improvement for mixtures modified with CR, EE-2, and DPA up to 12% and then a drastic reduction in the Marshal stability and Quotient values, except for CR. Hence, the mixtures modified with 12% CR, EE-2, and DPA showed maximum stability and Marshall quotient values and, hence, improved resistance against deformation. Despite having the highest Marshall stability and marshal quotient values, 16% CR was not feasible due the fact of its high viscosity values.
- The retained stability of mixtures modified with CR, EE-2, and DPA showed significant improvement as compared to the non-modified mixtures; this indicates that these mixtures were less susceptible to moisture and, hence, there was strong adhesion (bond) between the aggregate and modified binders.
- Similarly, the indirect tensile strength for the mixtures modified with 12% CR, EE-2, and DPA showed very similar behavior but a slight improvement as compared to the controlled mixed specimens.
Author Contributions
Funding
Conflicts of Interest
References
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Physical Property/Test | Value | Standards |
---|---|---|
Soundness Value (Na2SO4) | 4.12% | <15% |
Abrasion | 20.50% | <40% |
Flat and Elongated Particles | 2.61% | 10% Maximum |
Sand Equivalent | 64% | 40% Minimum |
Combined Specific Gravity | 2.82 | 2.40 to 3.0 |
Water Absorption | 2.31% | 2.5% (Maximum) |
Physical Property/Test | Value | Standards |
---|---|---|
Specific Gravity | 1.021 | 1.01 to 1.06 |
Penetration @ 25 °C, 0.1 mm | 60–70 | Varies |
Softening point (°C) | 48.95 | 49 to 56 |
Flash point (°C) | 311 | 230 (Minimum) |
Ductility (mm) | 126.4 | 100 (Minimum) |
Viscosity @ 135 °C (Pa.s) | 0.460 | 3 (Maximum) |
Super-Pave Performance Grade (PG) | 64–10 | Depending on region |
Variable 1 (12% EE-2) | Variable 2 (12% DPA) | |
---|---|---|
Mean | 1.195966667 | 1.1968 |
Variance | 0.600969703 | 0.60046707 |
t-Stat | −1.386750491 | |
p-Value, (T ≤ t) one-tail | 0.149929979 | |
t-Value, critical one-tail | 2.91998558 | |
p-Value, (T ≤ t) two-tail | 0.299859958 | |
t-Value, critical two-tail | 4.30265273 |
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Khan, M.I.; Sutanto, M.H.; Sunarjono, S.; Room, S.; Yusoff, N.I.M. Effect of Crumb Rubber, Epolene (EE-2), and Date Palm Ash as Modifiers on the Performance of Binders and Mixtures: A Sustainable Approach. Sustainability 2019, 11, 6484. https://doi.org/10.3390/su11226484
Khan MI, Sutanto MH, Sunarjono S, Room S, Yusoff NIM. Effect of Crumb Rubber, Epolene (EE-2), and Date Palm Ash as Modifiers on the Performance of Binders and Mixtures: A Sustainable Approach. Sustainability. 2019; 11(22):6484. https://doi.org/10.3390/su11226484
Chicago/Turabian StyleKhan, Muhammad Imran, Muslich Hartadi Sutanto, Sri Sunarjono, Shah Room, and Nur Izzi Md Yusoff. 2019. "Effect of Crumb Rubber, Epolene (EE-2), and Date Palm Ash as Modifiers on the Performance of Binders and Mixtures: A Sustainable Approach" Sustainability 11, no. 22: 6484. https://doi.org/10.3390/su11226484
APA StyleKhan, M. I., Sutanto, M. H., Sunarjono, S., Room, S., & Yusoff, N. I. M. (2019). Effect of Crumb Rubber, Epolene (EE-2), and Date Palm Ash as Modifiers on the Performance of Binders and Mixtures: A Sustainable Approach. Sustainability, 11(22), 6484. https://doi.org/10.3390/su11226484