Stress-Strain Behaviour and Mechanical Strengths of Concrete Incorporating Mixed Recycled Plastics
Abstract
:1. Introduction
2. Experimental Methodology
2.1. Materials
2.2. Mix Proportion and Specimens Preparation
2.3. Laboratory Tests
3. Test Results and Discussion
3.1. Fresh Properties
3.2. Mechanical Properties
3.2.1. Compressive Strength
3.2.2. Indirect Tensile and Flexural Strengths and Modulus of Elasticity
3.2.3. Comparison between Testing Results and AS 3600 Code Predictions
3.2.4. Stress-Strain Curve
3.2.5. Toughness and Ductility
3.2.6. Stress-Strain Curves Comparison with Existing Constitutive Model
3.2.7. Ultrasonic Pulse Velocity (UPV)
4. Concluding Remarks
- Mixed recycled plastic waste tends to reduce the workability of the concrete regardless of the replacement ratios. At a low replacement ratio, the use of different combinations of the three plastic types does not alter the result of workability. In addition, the fresh density decreased in all MRPC mixes as a result of the lower density of plastics. The air content increased with the increase of the plastic replacement ratios in most mixes and appeared to be related to the quality of the plastics.
- The analysis of mechanical testing results clearly indicated that increasing the plastic replacement ratio, as a variable, is more influential than the types of plastics used in the mixes.
- Improvement in failure behaviour is one of the encouraging characters of MRPC. MRPC had less brittle behaviour compared to the control mix. The results also showed that a 15% replacement ratio resulted in higher values of ductility compared to a 30% replacement ratio.
- Carreira and Chu’s model is more accurate than Popovic’s model in predicting the stress-strain behaviour for concrete with mixed recycled plastic.
- For further study, combinations of other types of recycled plastic should be investigated as the ultimate aim of the study is not to separate plastic wastes when mixing them into concrete, thus decreasing the cost and time of processing.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
ρ | The density of concrete |
fcmi | In situ compressive strength |
β | A material parameter that depends on the shape of the curve |
Eit | The initial tangential modulus |
ε | Strain of concrete caused by the axial stress |
ε0 | Concrete strain at the ultimate stress is calculated according to Equations (3) and (7) to correspond with the current experimental results |
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Mix | Mix ID | Rc (%) 1 | Mix Quantities (kg/m3) | |||||||
---|---|---|---|---|---|---|---|---|---|---|
Cement | Water | Fine | Coarse | Plastic | SP 2 | |||||
PET | HDPE | PP | ||||||||
Control | Control | - | 320.2 | 241.5 | 886.3 | 858.5 | - | - | - | 1.8 |
PET5% + HDPE5% | R1 | 10 | 320.2 | 241.5 | 886.3 | 772.65 | 19.34 | 15.1 | - | 1.8 |
PET10% + HDPE10% | R2 | 20 | 320.2 | 241.5 | 886.3 | 686.8 | 38.68 | 30.19 | - | 1.8 |
PET5% + PP5% | R3 | 10 | 320.2 | 241.5 | 886.3 | 772.65 | 19.34 | - | 14.31 | 1.8 |
PET10% + PP10% | R4 | 20 | 320.2 | 241.5 | 886.3 | 686.8 | 38.68 | - | 28.61 | 1.8 |
HDPE5% + PP5% | R5 | 10 | 320.2 | 241.5 | 886.3 | 772.65 | - | 15.1 | 14.31 | 1.8 |
HDPE10% + PP10% | R6 | 20 | 320.2 | 241.5 | 886.3 | 686.8 | - | 30.19 | 28.61 | 1.8 |
PET5% + HDPE5% + PP5% | R7 | 15 | 320.2 | 241.5 | 886.3 | 729.73 | 19.34 | 15.1 | 14.31 | 1.8 |
PET10% + HDPE10% + PP10% | R8 | 30 | 320.2 | 241.5 | 886.3 | 600.95 | 38.68 | 30.19 | 28.61 | 1.8 |
Mix ID | Slump (mm) | Fresh Density (kg/m3) | Hardened Density (kg/m3) | Air Content (%) |
---|---|---|---|---|
Control | 117 | 2306.5 | 2292.2 | 2.2% |
R1 | 131 | 2237.3 | 2240.2 | 3.7% |
R2 | 100 | 2161.8 | 2117.0 | 4.8% |
R3 | 135 | 2229.5 | 2228.3 | 4.2% |
R4 | 107 | 2195.7 | 2185.9 | 3.7% |
R5 | 128 | 2199.7 | 2237.6 | 4.9% |
R6 | 121 | 2105.3 | 2144.8 | 7.2% |
R7 | 119 | 2175.3 | 2257.0 | 5.8% |
R8 | 86 | 2101.7 | 2108.0 | 5.4% |
Mix ID | Compressive Strength | |||||||
---|---|---|---|---|---|---|---|---|
3 Days | 7 Days | 14 Days | 28 Days | |||||
MPa | SD | MPa | SD | MPa | SD | MPa | SD | |
Control | 16.6 | 0.75 | 21.9 | 0.79 | 26.1 | 0.49 | 27.3 | 1.07 |
R1 | 13.5 | 1.32 | 19.0 | 0.46 | 21.2 | 0.65 | 22.1 | 1.37 |
R2 | 12.5 | 0.45 | 16.1 | 0.52 | 17.4 | 0.92 | 18.0 | 0.81 |
R3 | 14.6 | 0.69 | 18.2 | 1.17 | 20.7 | 0.49 | 22.6 | 0.55 |
R4 | 11.2 | 0.30 | 14.5 | 0.28 | 16.4 | 0.68 | 17.1 | 0.33 |
R5 | 14.5 | 0.56 | 17.6 | 1.50 | 21.3 | 0.46 | 22.5 | 0.68 |
R6 | 11.6 | 1.00 | 14.7 | 0.19 | 16.6 | 0.62 | 16.6 | 0.18 |
R7 | 13.9 | 0.42 | 17.2 | 1.70 | 20.1 | 1.20 | 22.4 | 0.37 |
R8 | 11.5 | 0.49 | 14.7 | 0.14 | 15.3 | 1.31 | 16.3 | 0.18 |
Mix ID | Indirect Tensile Strength (MPa) | Flexural Strength (MPa) | Modulus of Elasticity (GPa) | ||||||
---|---|---|---|---|---|---|---|---|---|
Experimental | AS 3600 | Experimental | AS 3600 | Experimental | AS 3600 | ||||
MPa | SD | MPa | SD | GPa | SD | ||||
Control | 2.74 | 0.12 | 1.88 | 3.71 | 0.21 | 3.13 | 27.20 | 0.83 | 24.7 |
R1 | 2.39 | 0.04 | 1.69 | 3.08 | 0.21 | 2.82 | 24.10 | 0.65 | 21.4 |
R2 | 1.99 | 0.11 | 1.53 | 2.90 | 0.20 | 2.54 | 19.91 | 0.68 | 17.8 |
R3 | 2.63 | 0.14 | 1.71 | 3.00 | 0.27 | 2.85 | 24.65 | 0.60 | 21.5 |
R4 | 2.26 | 0.08 | 1.49 | 2.55 | 0.23 | 2.48 | 19.55 | 1.26 | 18.2 |
R5 | 2.31 | 0.06 | 1.71 | 3.26 | 0.22 | 2.85 | 23.16 | 0.50 | 21.6 |
R6 | 1.97 | 0.05 | 1.47 | 2.81 | 0.11 | 2.45 | 19.18 | 0.59 | 17.4 |
R7 | 2.28 | 0.09 | 1.70 | 3.17 | 0.22 | 2.84 | 22.55 | 0.95 | 21.8 |
R8 | 1.70 | 0.17 | 1.45 | 2.57 | 0.22 | 2.42 | 16.96 | 1.67 | 16.8 |
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Abu-Saleem, M.; Zhuge, Y.; Hassanli, R.; Ellis, M.; Rahman, M.M.; Levett, P. Stress-Strain Behaviour and Mechanical Strengths of Concrete Incorporating Mixed Recycled Plastics. J. Compos. Sci. 2021, 5, 146. https://doi.org/10.3390/jcs5060146
Abu-Saleem M, Zhuge Y, Hassanli R, Ellis M, Rahman MM, Levett P. Stress-Strain Behaviour and Mechanical Strengths of Concrete Incorporating Mixed Recycled Plastics. Journal of Composites Science. 2021; 5(6):146. https://doi.org/10.3390/jcs5060146
Chicago/Turabian StyleAbu-Saleem, Mahmoud, Yan Zhuge, Reza Hassanli, Mark Ellis, Md Mizanur Rahman, and Peter Levett. 2021. "Stress-Strain Behaviour and Mechanical Strengths of Concrete Incorporating Mixed Recycled Plastics" Journal of Composites Science 5, no. 6: 146. https://doi.org/10.3390/jcs5060146
APA StyleAbu-Saleem, M., Zhuge, Y., Hassanli, R., Ellis, M., Rahman, M. M., & Levett, P. (2021). Stress-Strain Behaviour and Mechanical Strengths of Concrete Incorporating Mixed Recycled Plastics. Journal of Composites Science, 5(6), 146. https://doi.org/10.3390/jcs5060146