Thermal and Mechanical Analysis of Polyethylene Homo-Composites Processed by Rotational Molding
Abstract
:1. Introduction
2. Materials and Methods
2.1. Processing of Polyethylene Homo-Composites
- The first method involved the production of homo-composite bars with 20% wt of UHMWPE and 80% wt of LLDPE through compression molding, using a Campana hot press. A controlled amount of LLDPE and UHWMPE fibers were placed in a 3 mm thick steel frame, after which samples were compression molded at 135 °C, applying a first pressure step of 50 bar for 5 min and a second step of 100 bar for 5 min. Following this, samples were cooled down to room temperature by means of a hydraulic cooling system, under 100 bar pressure. The thickness of compression molded samples was 3 mm. The choice of the temperature during compression molding was based on a preliminary optimization cycle, showing that this is the minimum temperature required to attain good fiber impregnation. The compression molded samples were labeled as HC_CM.
- The second method involved the preliminary production of homo-composites through co-extrusion of LLDPE with UHMWPE fibers. Co-extrusion was performed in a Haake R Rheomex PTW16/25 D twin screw extruder. The extrusion process was run at a screw temperature profile of 140–160–170–160–150–150 °C–130 °C with a screw speed of 7 rpm. The extruder was provided with a 3-mm rod die, modified in order to allow for co-extrusion, as reported in the scheme of Figure 1. Essentially, UHMWPE fibers were fed in the extruder chamber though the pressure gauge gate. A co-extrusion element was placed inside the extrusion die throat, which had a diameter of 6 mm. This co-extrusion element was a cylinder, hollow throughout its length, apart from a solid base. On the solid base, which faces the rear of the extruder, a 2 mm diameter hole allowed for fiber inlet to the die. The hollow cylinder was further provided with holes on its side surface, which allowed for molten matrix inlet to the die. In the hollow length of the co-extrusion element, the molten matrix surrounded the fibers, and the coextruded homo-composite was finally passed though the extrusion die. LLDPE matrix, in powder form, was filled in the extruder and melted before the addition of the fibers, which was attained in the modified die. Therefore, it was expected that the fibers would reach a maximum temperature of 130 °C, the die temperature, during their processing. This procedure allowed for us to obtain a homo-composite with a higher amount of UHMWPE fibers, 30%, and 70% LLDPE matrix. Due to the poor impregnation of the UHMWPE fibers after co-extrusion, further compression molding was carried out with the same processing conditions used for HC_CM. However, in this case, the compression molding temperature was set to 125 °C, and the thickness of reinforcing bars was set to 0.4 mm by the use of a thinner steel frame. Co-extruded samples were labeled as HC_CE, whereas co-extruded and further compression molded samples were labeled as HC_CE_CM.
2.2. Mechanical and Thermal Characterization
3. Results and Discussion
3.1. Thermal Characterization of Polyethylene Homo-Composites
3.2. Mechanical Characterization of Polyethylene Homo-Composites
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Sample Code | Reinforcing Homo-Composite | Reinforcement Layout | % of UHWMPE Fibers |
---|---|---|---|
1bar_HC_CM | Compression molded | | 1.3 |
2bar_HC_CM | Compression molded | | 2.7 |
3bar_HC_CM | Compression molded | | 4 |
4bar_HC_CE_CM | Co-extruded and compression molded | | 0.6% |
8bar_HC_CE_CM | Co-extruded and compression molded | | 1.2% |
2 Scan | dp | Kp (K−1) | Tp (°C) | Equation (4) | Equation (4) (J/g) | |
Untreated | 158 | 7.8 | 0.737 | 137 | ||
HC_CM | 36 | 7.8 | 0.737 | 137 | 0.23 | |
HC_CE | 42.3 | 7.8 | 0.737 | 137 | 0.27 | |
HC_CE_CM | 50.7 | 7.8 | 0.737 | 137 | 0.32 | |
HC_RM | 37.9 | 7.8 | 0.737 | 137 | 0.24 | |
1 Scan | (J/g) | dp | Kp (K−1) | Tp (°C) | ||
Untreated | 288 | 1.7 | 0.31 | 152 | ||
HC_CM | 42 | 2.0 | 0.49 | 148 | 183 | |
HC_CE | 56.7 | 1.7 | 0.46 | 150 | 212 | |
HC_CE_CM | 65.3 | 1.4 | 0.44 | 150 | 204 | |
HC_RM | 48.7 | 2.5 | 0.70 | 149 | 203 |
Sample | xv | |
---|---|---|
HC_CM | 0.93 ± 0.04 | 0.006 |
HC_CE | 0.82 ± 0.03 | 0.12 |
HC_CE_CM | 0.92 ± 0.04 | 0.017 |
Sample | E (GPa) | ET (GPa) |
---|---|---|
LLDPE matrix | 0.6 | - |
UHMWPE fibers | 40 | - |
HC_CM (135 °C) | 2.37 | 8.40 |
HC_CE | 9.07 | 12.35 |
HC_CE_CM (125 °C) | 11.10 | 12.35 |
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Greco, A.; Ferrari, F.; Buccoliero, M.G.; Trono, G. Thermal and Mechanical Analysis of Polyethylene Homo-Composites Processed by Rotational Molding. Polymers 2019, 11, 528. https://doi.org/10.3390/polym11030528
Greco A, Ferrari F, Buccoliero MG, Trono G. Thermal and Mechanical Analysis of Polyethylene Homo-Composites Processed by Rotational Molding. Polymers. 2019; 11(3):528. https://doi.org/10.3390/polym11030528
Chicago/Turabian StyleGreco, Antonio, Francesca Ferrari, Maria Grazia Buccoliero, and Greta Trono. 2019. "Thermal and Mechanical Analysis of Polyethylene Homo-Composites Processed by Rotational Molding" Polymers 11, no. 3: 528. https://doi.org/10.3390/polym11030528
APA StyleGreco, A., Ferrari, F., Buccoliero, M. G., & Trono, G. (2019). Thermal and Mechanical Analysis of Polyethylene Homo-Composites Processed by Rotational Molding. Polymers, 11(3), 528. https://doi.org/10.3390/polym11030528