Reuse of CD and DVD Wastes as Reinforcement in Gypsum Plaster Plates
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.1.1. Gypsum
2.1.2. Polycarbonate (PC) Waste from Recycled CDs and DVDs
2.2. Samples Definition
2.2.1. SCENARIO 1: Crushed PC Waste Used as Aggregate in the Gypsum Matrix
2.2.2. SCENARIO 2: Full CDs Used as Internal Reinforcement in the Gypsum Plates
2.2.3. Scenario 3: Full CDs Internal Reinforcement and Crushed PC Waste Aggregate in the Matrix
2.3. Test methods
2.3.1. PC Waste-Gypsum Plasters Previous Physical and Mechanical Characterization
2.3.2. Flexural Strength Test
2.3.3. Thermal Conductivity Test
3. Results and Discussion
3.1. Previous Tests Results
3.2. Weight of the Various Plates under Study
3.3. Flexural Strength Test Results
3.3.1. Scenario 1
3.3.2. Scenario 2
3.3.3. Scenario 3
3.3.4. Final Discussion
3.4. Thermal Conductivity Test Results
4. Conclusions
- For all the scenarios, the use of the recycled discs was linked to a decrease in their weight. The lightest plates were the PC60 series samples (15.2% lower than the reference samples).
- According to the flexural strength test results, in general terms, the best performance was achieved by the Scenario 3 plates, with the PC20-rD samples the ones that obtained the highest value (0.70 kN). On the other hand, the lowest result was achieved by the rC samples. Comparing the results of the Scenarios 1 and 2 with the ones obtained for the Scenario 3, it can be appreciated that a better mechanical performance was achieved when both reinforcement options worked together.
- The thermal test results showed that, when the amount of PC waste added to the plates increased, the thermal conductivity of the composites decreased. The specimens that contained plastic aggregate in the matrix (Scenarios 1 and 3) were the ones that presented the best thermal performance. The best thermal conductivity value (0.16 W/mK) was achieved for the PC60 plates.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Purity [%] | Granulometry [mm] | Surface Hardness [Shore C] | Performance [kg/m2/cm] | Flexural Strength [N/mm2] | Compressive Strength [N/mm2] | Adherence [N/mm2] | Ph |
---|---|---|---|---|---|---|---|
>75 | 0–1 | ≥45 | 10–12 | ≥2 | ≥2 | >0.1 | >6 |
Sample | Thickness [mm] | Tensile Strength [MPa] | Tensile Modulus [MPa] | Elongation at Break [%] | Compressive Strength [MPa] | Compressive Modulus [MPa] |
---|---|---|---|---|---|---|
CD0 | 1.42 | 32.7 | 972.5 | 120 | 82.7 | 1654.7 |
Element | Al2O3 | Fe2Al5 | Fe | FeO | Ag | CrO3 | Ag2Cr2O7 |
---|---|---|---|---|---|---|---|
(%) | 29.08 | 9.38 | 15.85 | 11.38 | 16.77 | 6.92 | 10.62 |
Samples | Gypsum [g] | Water [g] [mL] | Crushed PC Waste [g] | Reinforcement Volume [% by Volume of Gypsum] |
---|---|---|---|---|
Reference | 7000 | 3850 | - | - |
PC10 | 6000 | 3300 | 600 | 17.73 |
PC20 | 5000 | 2750 | 1000 | 35.47 |
PC40 | 4000 | 2200 | 1600 | 70.93 |
PC60 | 3500 | 1925 | 2100 | 106.4 |
Sample Series | Density [g/cm3] (CoV [%]) | Flexural Strength [MPa] (CoV [%]) | Compressive Strength [MPa] (CoV [%]) | E [MPa] (CoV [%]) |
---|---|---|---|---|
Reference | 1.336 (0.69) | 3.420 (7.36) | 6.680 (5.26) | 697.46 (4.43) |
PC10 | 1.242 (1.14) | 3.541 (10.90) | 8.984 (5.27) | 704.17 (5.80) |
PC20 | 1.235 (1.56) | 3.054 (13.29) | 8.036 (10.01) | 681.25 (9.35) |
PC40 | 1.194 (1.73) | 2.617 (8.89) | 7.701 (7.23) | 515.38 (7.49) |
PC60 | 1.138 (2.01) | 2.328 (12.33) | 5.590 (9.39) | 316.67 (9.11) |
Plate | UNE-EN 14246 Check (6 kg 30’) | Breaking Load [kN] | Mean Value [kN] |
---|---|---|---|
Reference 1 | OK | 0.61 | 0.57 |
Reference 2 | OK | 0.57 | |
Reference 3 | OK | 0.54 |
Plate | UNE-EN 14246 Check (6 kg 30´) | Breaking Load [kN] | Mean Value [kN] |
---|---|---|---|
PC10 1 | OK | 0.64 | 0.62 |
PC10 2 | OK | 0.63 | |
PC10 3 | OK | 0.59 | |
PC20 1 | OK | 0.58 | 0.56 |
PC20 2 | OK | 0.55 | |
PC20 3 | OK | 0.54 | |
PC40 1 | OK | 0.49 | 0.47 |
PC40 2 | OK | 0.46 | |
PC40 3 | OK | 0.45 | |
PC60 1 | OK | 0.44 | 0.42 |
PC60 2 | OK | 0.41 | |
PC60 3 | OK | 0.41 |
Plate | UNE-EN 14246 Check (6kg 30´) | Breaking Load [kN] | Mean Value [kN] |
---|---|---|---|
rA 1 | OK | 0.53 | 0.50 |
rA 2 | OK | 0.49 | |
rA 3 | OK | 0.48 | |
rB 1 | OK | 0.41 | 0.38 |
rB 2 | OK | 0.37 | |
rB 3 | OK | 0.35 | |
rC 1 | OK | 0.30 | 0.28 |
rC 2 | OK | 0.28 | |
rC 3 | OK | 0.27 | |
rD 1 | OK | 0.68 | 0.67 |
rD 2 | OK | 0.68 | |
rD 3 | OK | 0.66 |
Plate | UNE-EN 14246 Check (6 kg 30’) | Breaking Load [kN] | Mean Value [kN] |
---|---|---|---|
PC20-rD 1 | OK | 0.72 | 0.70 |
PC20-rD 2 | OK | 0.70 | |
PC20-rD 3 | OK | 0.67 | |
PC40-rD 1 | OK | 0.56 | 0.53 |
PC40-rD 2 | OK | 0.52 | |
PC40-rD 3 | OK | 0.51 |
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Pedreño-Rojas, M.A.; Morales-Conde, M.J.; Pérez-Gálvez, F.; Rubio-de-Hita, P. Reuse of CD and DVD Wastes as Reinforcement in Gypsum Plaster Plates. Materials 2020, 13, 989. https://doi.org/10.3390/ma13040989
Pedreño-Rojas MA, Morales-Conde MJ, Pérez-Gálvez F, Rubio-de-Hita P. Reuse of CD and DVD Wastes as Reinforcement in Gypsum Plaster Plates. Materials. 2020; 13(4):989. https://doi.org/10.3390/ma13040989
Chicago/Turabian StylePedreño-Rojas, Manuel Alejandro, María Jesús Morales-Conde, Filomena Pérez-Gálvez, and Paloma Rubio-de-Hita. 2020. "Reuse of CD and DVD Wastes as Reinforcement in Gypsum Plaster Plates" Materials 13, no. 4: 989. https://doi.org/10.3390/ma13040989
APA StylePedreño-Rojas, M. A., Morales-Conde, M. J., Pérez-Gálvez, F., & Rubio-de-Hita, P. (2020). Reuse of CD and DVD Wastes as Reinforcement in Gypsum Plaster Plates. Materials, 13(4), 989. https://doi.org/10.3390/ma13040989