Mechanical Properties of Thermoplastic Composites Made of Commingled Carbon Fiber/Nylon Fiber
Abstract
:1. Introduction
2. Materials and Methods
2.1. Material
2.2. Press Molding
2.3. Press-Forming Conditions
- The spread commingled yarn fabric was laminated in advance using any number of layers and any lamination configuration, then dried in a vacuum dryer for at least 15 h at 80 °C.
- After it was confirmed that the mold had reached the desired molding temperature, the laminated spread commingled yarn fabric was removed from the vacuum dryer and fed into the mold.
- To melt the nylon fibers, preheating was performed under 1 MPa pressure for 5 min.
- The mold was maintained at a predetermined pressure (molding pressure) and for a predetermined time (molding time).
- After the heat molding was completed, the mold was unclamped, lifted off the hot plate by the die lifter, transferred from the heating plate to the cooling plate at room temperature, and cooled again by applying the desired pressure (molding pressure).
- After the mold temperature was confirmed to be below 80 °C the mold was opened by the press machine and the molded product was demolded using ejector plate.
2.4. Tensile Test and Four-Point Flexural Test
2.5. Measurement of Fiber Volume Content
2.6. Confirmation of Resin Impregnation to the Interior of the Carbon Fiber
3. Results
3.1. Fiber Volume Content
3.2. Tensile Test
3.3. Four-Point Flexural Test
4. Discussion
5. Conclusions
- The impregnation speed of the nylon resin into the carbon fiber bundles were very fast: less than 1 min. As the molding time increased, the tensile strength and tensile fracture strain slightly decreased, indicating the deterioration of the the nylon resin. As the molding pressure increased, the amount of matrix resin flowing out increased and the fiber volume fraction of the molded product increased, resulting in an increase in tensile strength and tensile strain at break.
- The effects of molding time on flexural strength, flexural modulus, and flexural fracture strain were negligible.
- As a result of the cross-sectional observation conducted to confirm the impregnation state of the matrix resin, no voids were observed in the molded products regardless of the molding time or molding pressure, indicating that resin impregnation into the carbon fiber bundles of the spread commingled yarn fabric was completed at a molding pressure of 5 MPa and a molding time of 5 min.
- The combination of commingled yarn, spread fiber, and woven fabric suggested the possibility of flexible and easy-to-handle thermoplastic CFRP prepreg.
- This is the first study on CFRTP using spread commingled carbon fiber and nylon fiber yarns as woven fabric.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Matrix resin | Low-water-absorbing nylon MXD10 (LEXTER manufactured by Mitsubishi Gas Chemical Co. Ltd., Japan) 1532 filaments (3.125 d mono-filament) |
Carbon fiber | PAN CF (Mitsubishi Chemical Co. Ltd. TR50S12L, Japan) 12,000 filaments |
Designed value of fiber volume content () | 50% |
Weave Structure | Plain |
---|---|
basis weight | 107.5 g/m2 |
Thickness | 244.6 µm |
Fiber volume content () | 41.5 % |
Length | Width | Layer Number |
---|---|---|
245 mm | 245 mm | 30 ply |
Molding Temperature | Preheating | Molding Time | Molding Pressure |
---|---|---|---|
270 °C | 1 MPa, 5 min | 5 min, 10 min 20 min, 30 min | 5 MPa, 10 MPa (30 min) |
Test Specimen Longitudinal Direction | Warp Direction | |
---|---|---|
Test specimen dimensions | length | 240 mm |
width | 25 mm | |
thickness | 2 + 0.4 mm | |
Distance between two lines of sight | 50 mm | |
Distance between tabs | 150 mm | |
Tab Length | 45 mm | |
Tensile test speed | 2 mm/min. | |
Sample number | 5 |
Test Specimen Longitudinal Direction | Warp Direction | |
---|---|---|
Test specimen dimensions | length | 100 mm |
width | 15 mm | |
thickness | 2 ± 0.4 mm | |
Distance between fulcrums | 88 mm | |
Distance between indenters | 29 mm | |
fulcrums radius | 3 mm | |
indenters radius | 3 mm | |
Flexural test speed | 5 mm/min. | |
Sample number | 6 |
Molding Time | 5 min | 10 min | 20 min | 30 min | 30 min |
---|---|---|---|---|---|
Molding pressure | 5 MPa | 10 MPa | |||
Fiber volume fraction () | 38.9% | 38.7% | 38.3% | 38.6% | 48.7% |
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Ono, M.; Yamane, M.; Tanoue, S.; Uematsu, H.; Yamashita, Y. Mechanical Properties of Thermoplastic Composites Made of Commingled Carbon Fiber/Nylon Fiber. Polymers 2021, 13, 3206. https://doi.org/10.3390/polym13193206
Ono M, Yamane M, Tanoue S, Uematsu H, Yamashita Y. Mechanical Properties of Thermoplastic Composites Made of Commingled Carbon Fiber/Nylon Fiber. Polymers. 2021; 13(19):3206. https://doi.org/10.3390/polym13193206
Chicago/Turabian StyleOno, Mizuki, Masachika Yamane, Shuichi Tanoue, Hideyuki Uematsu, and Yoshihiro Yamashita. 2021. "Mechanical Properties of Thermoplastic Composites Made of Commingled Carbon Fiber/Nylon Fiber" Polymers 13, no. 19: 3206. https://doi.org/10.3390/polym13193206
APA StyleOno, M., Yamane, M., Tanoue, S., Uematsu, H., & Yamashita, Y. (2021). Mechanical Properties of Thermoplastic Composites Made of Commingled Carbon Fiber/Nylon Fiber. Polymers, 13(19), 3206. https://doi.org/10.3390/polym13193206