Improving the Mechanical Properties and Durability of Cold Bitumen Emulsion Mixtures Using Waste Products and Microwave Heating Energy
Abstract
:1. Introduction
2. Experimental Programme
2.1. Materials Characteristics
2.2. Mix Design and Sample Preparations
2.3. The Adopted Methodology for MW-Treated Mixes
2.4. Samples Conditioning
2.5. Methods
2.5.1. Indirect Tensile Stiffness Modulus (ITSM)
2.5.2. The Uniaxial Compressive Cyclic Test (UCCT)
2.5.3. Durability (Water Sensitivity) Test
3. Results and Discussion
3.1. Effect of Post-Mix Heating Methods
3.2. Effect of MW Power Level on Air Void and Stiffness Modulus
3.3. Effect of MW Treatment on CBEMs Permanent Deformation
3.4. Effect of MW Treatment on CBEM Durability
4. Conclusions
- Post-heating MW treatment is an acceptable way of enhancing CBEMs. Both ITSM and air void content are significantly improved using both conventional and MW-heating methods. However, the MW treatment results in higher ITSM and lower air void content when the heating temperature treatment process is up to 100 °C.
- The curing process improves as it allows the water trapped between the aggregate and the bitumen to be absorbed due to the hydraulic properties of the PSA and its high content of calcium oxide.
- There is an association between treatment timing and produced mixture’s temperature that is responsible for mixture characteristics modification.
- The ITSM of treated CBEMs by MW is improved with curing time, where the timing of the MW is limiting the stage of improvement. Although the conventional heating method shows continuous improvement, the MW has an optimum timing value.
- Post-mixing treatment has an inversed effect of creep stiffness or rutting resistance in contrast to that of controlled CBEM, but the inferiority is insignificant.
- Post-mixing treatment has a slightly inversed effect of stiffness modulus ratio or water resistance in contrast to that of controlled CBEM, but the SMR reduction is limited.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Test Sieve Aperture Size mm | % by Mass Passing Mid | % by Mass Passing Specification Range |
---|---|---|
14 | 100 | 100 |
10 | 97.5 | 95–100 |
6.3 | 65 | 55–75 |
2 | 28 | 19–37 |
1 | 20 | 10–30 |
0.063 | 5.5 | 3–8 |
Element | Concentration | |
---|---|---|
Mineral Filler | PSA | |
Al2O3 | 9.221 | 3.471 |
CaO | 5.58 | 60.93 |
SiO2 | 53.597 | 28.178 |
Fe2O3 | 7.368 | 0.202 |
MgO | 4.984 | 3.554 |
K2O | 3.123 | 0.354 |
TiO2 | 0.831 | 0.556 |
Level | Category | Actual Power within 30 s (KW) | Power Setting % | Actual Power on Time (s) |
---|---|---|---|---|
1 | low | 5.784 | 20.00 | 6 |
2 | medium | 14.124 | 53.33 | 16 |
3 | high | 25.800 | 100.00 | 30 |
Test | First Stage Curing | Second Stage Curing | Time Testing (Days) | Recommended by |
---|---|---|---|---|
Indirect tensile Stiffness modulus | 20 °C for 1 day | 40 °C for 1 day | 2, 7, 14, 28, 90, 180 and 360 days | Jenkins [38] |
Uniaxial Compression cyclic | 20 °C for 1 day | 40 °C for 14 days | 15 | Thanaya [24] |
Stiffness modulus Ratio (durability test) | 20 °C for 1 day | 20 °C for 9 days | 10 | BS EN 12697-12 [39] |
20 °C for 1 day | 20 °C for 6 days, then socked 3 days at 40 °C |
Item | Range |
---|---|
Specimen diameter(mm) | 100 ± 3 |
Rise time | 124 ± 4 ms |
Loading time | 3–300 s |
Transient peak horizontal deformation | 5 µm |
No. of test plus | 5 |
No. of conditioning plus | 10 |
Poisson’s ratio | 0.35 |
Test temperature (°C) | 20 ± 0.5 |
Compaction | Marshall 50 × 2 |
Specimen temp. conditioning | 4hr before testing |
Specimen thickness mm | 63 ± 3 |
Item | Range |
---|---|
Loads | 100 ± 2 KPa |
Frequency | 0.5 Hz |
Rest period | 1 ± 0.05 s |
Loading pulse | 1 ± 0.05 s |
Poisson’s ratio | 0.35 for 20 °C |
Pre loading | 10 KPa for 10 min |
Test temperature (°C) | 40 ± 0.5 |
No. of test plus | 3600 |
Specimen thickness | 60 ± 2 mm |
Specimen diameter | 148 ± 5 |
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Al-Busaltan, S.; Dulaimi, A.; Al-Nageim, H.; Mahmood, S.; Kadhim, M.A.; Al-Kafaji, M.; Özkılıç, Y.O. Improving the Mechanical Properties and Durability of Cold Bitumen Emulsion Mixtures Using Waste Products and Microwave Heating Energy. Buildings 2023, 13, 414. https://doi.org/10.3390/buildings13020414
Al-Busaltan S, Dulaimi A, Al-Nageim H, Mahmood S, Kadhim MA, Al-Kafaji M, Özkılıç YO. Improving the Mechanical Properties and Durability of Cold Bitumen Emulsion Mixtures Using Waste Products and Microwave Heating Energy. Buildings. 2023; 13(2):414. https://doi.org/10.3390/buildings13020414
Chicago/Turabian StyleAl-Busaltan, Shakir, Anmar Dulaimi, Hassan Al-Nageim, Shaker Mahmood, Mustafa Amoori Kadhim, Muna Al-Kafaji, and Yasin Onuralp Özkılıç. 2023. "Improving the Mechanical Properties and Durability of Cold Bitumen Emulsion Mixtures Using Waste Products and Microwave Heating Energy" Buildings 13, no. 2: 414. https://doi.org/10.3390/buildings13020414
APA StyleAl-Busaltan, S., Dulaimi, A., Al-Nageim, H., Mahmood, S., Kadhim, M. A., Al-Kafaji, M., & Özkılıç, Y. O. (2023). Improving the Mechanical Properties and Durability of Cold Bitumen Emulsion Mixtures Using Waste Products and Microwave Heating Energy. Buildings, 13(2), 414. https://doi.org/10.3390/buildings13020414