Strategies for Waste Recycling: The Mechanical Performance of Concrete Based on Limestone and Plastic Waste
Abstract
:1. Introduction
2. Quarry Limestone Sand as Fine Aggregate for Concrete
2.1. Overview
2.2. Experimental Investigation
3. Plastics Waste as Additional Aggregate for Concrete
3.1. Plastic Waste Typologies used as Additional Aggregate for Concrete
3.2. Experimental Investigation
4. Performance Comparisons and Discussion
- Road pavements vibrated by power-operated machines.
- Road pavements vibrated by hand-operated machines.
- Mass foundations or lightly reinforced sections with vibrations.
- Repair and overlay of damaged, cement-based concrete surfaces in pavements, bridges, floors, and dams.
5. Conclusions
- In the case of quarry waste limestone sand used as partial replacement of the sand, and having the characteristic of a filler, if used in low quantities can lead to improvements in the mechanical characteristics of concrete. On the other hand, lower mechanical properties were reported when the quarry waste limestone sand is used in larger quantities. In the latter case, the loss in performance is such that it can be compensated for, with an increase in the cement content in the mix.
- In the case of concrete with plastic, for all the types of plastics analyzed, a reduction of the strength of concrete was reported, with higher reduction in strength with increasing percentage plastic content in the mix. This reduction is significant for low percentages of plastics and can halve the strength of the concrete for high amounts of plastics (around 30% of the original mixed volume of ordinary concrete). However, important information is obtained regarding the performance of plastic-based concrete; this information enables the exploitation of this waste in specific fields of application, satisfying particular performance requirements.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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1/21 of a Cubic M | |||
---|---|---|---|
Control Mix Components [kg] | Mix with 13% (of Ordinary Sand) of Fine Quarry Waste [kg] | Mix with 26% (of Ordinary Sand) of Fine Quarry Waste [kg] | |
Cement | 15 | 15 | 15 |
Water | 7.5 | 7.5 | 7.5 |
Fine Aggregate | 35 | 31 | 27 |
Quarried Waste Sand | 0 | 4 | 8 |
Coarse Aggregate | 38 | 38 | 38 |
waste by weight percentage introduction * (%) | 11 | 23 | |
1 Cubic M | |||
Cement | 315 | 315 | 315 |
Water | 157 | 157 | 157 |
Fine Aggregate | 735 | 651 | 567 |
Quarried Waste Sand | 0 | 84 | 168 |
Coarse Aggregate | 798 | 798 | 798 |
1/21 of a Cubic M + Waste | |||
---|---|---|---|
Control Mix Comp. [kg] | Mix with 10% Waste by Volume [kg] | Mix with 20% Waste by Volume [kg] | |
Cement | 15.75 | 15.75 | 15.75 |
Water | 9.45 | 9.45 | 9.45 |
Fine Aggregate | 39.9 | 39.9 | 39.9 |
Flake plastic | 0 | 2 | 4 |
Coarse Aggregate | 36.75 | 36.75 | 36.75 |
By volume Percentage of flake plastic (%) | 10 | 20 | |
1 Cubic M + Waste | |||
Cement | 330.7 | 330.7 | 330.7 |
Water | 198.5 | 198.5 | 198.5 |
Fine Aggregate | 837.9 | 837.9 | 837.9 |
Flake plastic | 0 | 42 | 84 |
Coarse Aggregate | 771.7 | 771.7 | 771.7 |
5.67/1000 of a Cubic M + Waste | ||||||
---|---|---|---|---|---|---|
Control Mix Comp. [kg] | Mix with 10% by Volume [kg] | Mix with 20% by Volume [kg] | Mix with 30% by Volume [kg] | Mix with 12.5% by Volume [kg] | Mix with 25% by Volume [kg] | |
Cement | 2.45 | 2.45 | 2.45 | 2.45 | 2.45 | 2.45 |
Water | 1.22 | 1.22 | 1.22 | 1.22 | 1.22 | 1.22 |
Fine Aggregate | 3.34 | 3.34 | 3.34 | 3.34 | 3.34 | 3.34 |
Granulated plastic | 0 | 0.3 | 0.64 | 0.96 | 0.375 | 0.75 |
Coarse Aggregate | 6.45 | 6.45 | 6.45 | 6.45 | 6.45 | 6.45 |
By volume Percentage of granulated plastic (%) | 10 | 20 | 30 | 12.5 | 25 | |
1 Cubic M + Waste | ||||||
Cement | 430 | 430 | 430 | 430 | 430 | 430 |
Water | 215 | 215 | 215 | 215 | 215 | 215 |
Fine Aggregate | 589 | 589 | 589 | 589 | 589 | 589 |
Granulated plastic | 0 | 52.9 | 112.9 | 169 | 66.1 | 132.3 |
Coarse Aggregate | 1137 | 1137 | 1137 | 1137 | 1137 | 1137 |
5.67/1000 of a Cubic M | ||||
---|---|---|---|---|
Control Mix Comp. [kg] | Mix with 10% by Volume [kg] | Mix with 20% by Volume [kg] | Mix with 30% by Volume [kg] | |
Cement | 1.75 | 1.75 | 1.75 | 1.75 |
Water | 0.87 | 0.87 | 0.87 | 0.87 |
Fine Aggregate | 3.71 | 3.71 | 3.71 | 3.71 |
Sand plastic | 0 | 0.371 | 0.742 | 1.113 |
Coarse Aggregate | 6.45 | 6.45 | 6.45 | 6.45 |
By volume Percentage of sand plastic (%) | 10 | 20 | 30 | |
1 Cubic M | ||||
Cement | 308 | 308 | 308 | 308 |
Water | 153 | 153 | 153 | 153 |
Fine Aggregate | 654 | 654 | 654 | 654 |
Sand plastic | 0 | 65 | 130 | 195 |
Coarse Aggregate | 1137 | 1137 | 1137 | 1137 |
5.67/1000 of a Cubic M | |||||
---|---|---|---|---|---|
Control Mix Comp. [kg] | Mix with 2% by Volume [kg] | Mix with 4% by Volume [kg] | Mix with 6% by Volume [kg] | Mix with 30% by Volume [kg] | |
Cement | 2.45 | 2.45 | 2.45 | 2.45 | 2.45 |
Water | 1.22 | 1.22 | 1.22 | 1.22 | 1.22 |
Fine Aggregate | 3.71 | 3.71 | 3.71 | 3.71 | 3.71 |
Sand plastic | 0 | 0.075 | 0.150 | 0.222 | 1.113 |
Coarse Aggregate | 6.45 | 6.45 | 6.45 | 6.45 | 6.45 |
By volume Percentage of sand plastic (%) | 2 | 4 | 6 | 30 | |
1 Cubic M | |||||
Cement | 308 | 308 | 308 | 308 | 308 |
Water | 153 | 153 | 153 | 153 | 153 |
Fine Aggregate | 654 | 654 | 654 | 654 | 654 |
Sand plastic | 0 | 13.22 | 26.40 | 39.7 | 195 |
Coarse Aggregate | 1137 | 1137 | 1137 | 1137 | 1137 |
Cement (Weight) | Water (Weight) | Sand (Weight) | Aggregate (Weight) | Waste Aggregate (Weight) | Type of Waste Aggregate | By Volume Percentage of Additional Waste | Strength at 28 Days (MPa) |
---|---|---|---|---|---|---|---|
1.00 | 0.5 | 2.33 | 2.53 | 0.00 | Limestone sand | * | 38.3 |
2.07 | 2.53 | 0.26 | * | 41.74 | |||
1.80 | 2.53 | 0.5 | * | 36.57 | |||
1.00 | 0.5 | 1.363 | 2.622 | 0.00 | Granulated (PET-G1) | 0 | 39.73 |
1.363 | 2.622 | 0.153 | 12.5 | 31.6 | |||
1.363 | 2.622 | 0.306 | 25 | 21.5 | |||
1.00 | 0.5 | 1.514 | 2.622 | 0.00 | Granulated (PET-G2) | 0 | 39.42 |
1.514 | 2.622 | 0.163 | 10 | 31.72 | |||
1.514 | 2.622 | 0.327 | 20 | 26.28 | |||
1.514 | 2.622 | 0.490 | 30 | 15.23 | |||
1.00 | 0.5 | 2.120 | 3.671 | 0.000 | Powder (PET-P1) | 0 | 22.6 |
2.120 | 3.671 | 0.212 | 10 | 18.6 | |||
2.120 | 3.671 | 0.424 | 20 | 14.8 | |||
2.120 | 3.671 | 0.636 | 30 | 11.8 | |||
1.00 | 0.5 | 1.51 | 2.62 | 0.00 | Powder (PET-P2) | 0 | 39.5 |
1.51 | 2.62 | 0.05 | 2 | 36.3 | |||
1.51 | 2.62 | 0.10 | 4 | 33.4 | |||
1.51 | 2.62 | 0.15 | 6 | 31.6 | |||
1.51 | 2.62 | 0.64 | 30 | 19.6 | |||
1.00 | 0.5 | 2.53 | 2.33 | 0.00 | Flake (PET-R) | 0 | 18.452 |
2.53 | 2.33 | 0.13 | 10 | 12.924 | |||
2.53 | 2.33 | 0.25 | 20 | 8.572 |
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Ferrotto, M.F.; Asteris, P.G.; Borg, R.P.; Cavaleri, L. Strategies for Waste Recycling: The Mechanical Performance of Concrete Based on Limestone and Plastic Waste. Sustainability 2022, 14, 1706. https://doi.org/10.3390/su14031706
Ferrotto MF, Asteris PG, Borg RP, Cavaleri L. Strategies for Waste Recycling: The Mechanical Performance of Concrete Based on Limestone and Plastic Waste. Sustainability. 2022; 14(3):1706. https://doi.org/10.3390/su14031706
Chicago/Turabian StyleFerrotto, Marco Filippo, Panagiotis G. Asteris, Ruben Paul Borg, and Liborio Cavaleri. 2022. "Strategies for Waste Recycling: The Mechanical Performance of Concrete Based on Limestone and Plastic Waste" Sustainability 14, no. 3: 1706. https://doi.org/10.3390/su14031706
APA StyleFerrotto, M. F., Asteris, P. G., Borg, R. P., & Cavaleri, L. (2022). Strategies for Waste Recycling: The Mechanical Performance of Concrete Based on Limestone and Plastic Waste. Sustainability, 14(3), 1706. https://doi.org/10.3390/su14031706