Preparation of High-Performance Carbon Fiber-Reinforced Epoxy Composites by Compression Resin Transfer Molding
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials and Characterizations
2.2. Preparation of Casting Body by Bisphenol A-Type Epoxy Resin System
2.3. Preparation of Composite Samples by CM
2.4. Preparation of Composite Samples by RTM
2.5. Preparation of Composite Samples by CRTM
3. Results and Discussions
3.1. Properties of Epoxy Resin System
3.1.1. Thermal Properties of Epoxy Resin System
3.1.2. Rheological Properties of Epoxy Resin System
3.2. Mechanical Properties of Composite Prepared by CM
3.3. Mechanical Properties of Composite Samples Prepared by RTM
3.4. Preparation and Mechanical Properties of Composite Samples Prepared by CRTM
4. Conclusions
- (1)
- the molding parameters of CRTM technology was confirmed by investigation on influence factors of CM and RTM technology, including filling temperature, infusion speed, heating and pressure scheme, etc.
- (2)
- the experimental results showed that the composites prepared by CRTM exhibited superior mechanical properties than those of the composites prepared by RTM and CM. The composite prepared by CRTM showed up to 42.9%, 41.2%, 77.3%, and 5.3% increases in tensile strength, bending strength, interlaminar shear strength, and volume fraction, respectively, that those of the composites prepared by RTM. Meanwhile, the porosity decreased by 45.2 %.
- (3)
- CRTM technology saves cost in molding carbon fiber reinforced composites compared with CM technology, which avoids the problems of storage, transportation, and high cost of prepreg.
Author Contributions
Funding
Conflicts of Interest
References
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Heating Rate (°C/min) | Ti (°C) | Tp (°C) | Tf (°C) |
---|---|---|---|
2 | 64 | 94 | 133 |
5 | 68 | 106 | 153 |
7 | 71 | 114 | 165 |
10 | 74 | 126 | 184 |
0 | 62 | 86 | 121 |
Tensile Strength /MPa | CV /% | Tensile Modulus /GPa | Elongation /% | Bending Strength /MPa | CV /% | Bending Modulus /GPa | Impact Strength/KJ/m2 | CV /% |
---|---|---|---|---|---|---|---|---|
768.56 | 3.46 | 3.01 | 4.02 | 767.64 | 2.82 | 3.07 | 16.87 | 4.66 |
Tensile Strength /MPa | CV /% | Bending Strength /MPa | CV /% | Compressive Strength /MPa | CV /% | Interlaminar Shear Strength /MPa | CV /% |
---|---|---|---|---|---|---|---|
768.56 | 2.82 | 767.64 | 3.86 | 417.59 | 4.48 | 286.90 | 4.22 |
Injection Rate/cc·min−1 | Injection Pressure/MPa | Temperature/°C |
---|---|---|
40 | 0.15 | 40 |
Tensile Strength /MPa | CV /% | Bending Strength /MPa | CV /% | Compressive Strength /MPa | CV /% | Interlaminar Shear Strength /MPa | CV /% |
---|---|---|---|---|---|---|---|
571.69 | 3.24 | 553.59 | 4.32 | 335.46 | 3.66 | 179.05 | 2.98 |
Tensile Strength /MPa | CV /% | Bending Strength /MPa | CV /% | Compressive Strength /MPa | CV /% | Interlaminar Shear Strength /MPa | CV /% |
---|---|---|---|---|---|---|---|
817.51 | 3.67 | 781.90 | 4.05 | 407.54 | 4.12 | 317.53 | 3.89 |
Processing Style | Volume Fraction/% | Porosity/% |
---|---|---|
CRTM | 78.1 | 0.23 |
CM | 78.5 | 0.26 |
RTM | 74.2 | 0.42 |
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Sun, Z.; Xiao, J.; Tao, L.; Wei, Y.; Wang, S.; Zhang, H.; Zhu, S.; Yu, M. Preparation of High-Performance Carbon Fiber-Reinforced Epoxy Composites by Compression Resin Transfer Molding. Materials 2019, 12, 13. https://doi.org/10.3390/ma12010013
Sun Z, Xiao J, Tao L, Wei Y, Wang S, Zhang H, Zhu S, Yu M. Preparation of High-Performance Carbon Fiber-Reinforced Epoxy Composites by Compression Resin Transfer Molding. Materials. 2019; 12(1):13. https://doi.org/10.3390/ma12010013
Chicago/Turabian StyleSun, Zeyu, Jie Xiao, Lei Tao, Yuanping Wei, Shijie Wang, Hui Zhang, Shu Zhu, and Muhuo Yu. 2019. "Preparation of High-Performance Carbon Fiber-Reinforced Epoxy Composites by Compression Resin Transfer Molding" Materials 12, no. 1: 13. https://doi.org/10.3390/ma12010013
APA StyleSun, Z., Xiao, J., Tao, L., Wei, Y., Wang, S., Zhang, H., Zhu, S., & Yu, M. (2019). Preparation of High-Performance Carbon Fiber-Reinforced Epoxy Composites by Compression Resin Transfer Molding. Materials, 12(1), 13. https://doi.org/10.3390/ma12010013