A New Vacuum Pressure Infiltration CFRP Method and Preparation Experimental Study of Composite
Abstract
:1. Introduction
2. Design of Vacuum Infiltration Hot-Press Forming Experimental System
2.1. Overall Design of the Experimental System
2.2. Design of Key Parts of the Experimental System
2.2.1. Fiber Pre-Forming Module
2.2.2. Vacuum Heating Infiltration Module
2.2.3. Hot-Press Curing Molding Module
2.2.4. Data Acquisition Control Module
2.3. Physical Construction of Vacuum Infiltration Hot-Press Forming Experimental System
3. Composite Material Preparation Experiment
3.1. Experimental Materials
3.2. Experimental Process of Two-Dimensional (2D)-CFRP Preparation
3.3. Testing and Characterization Methods
3.4. Experimental Results
4. Conclusions
- (1)
- In this paper, a vacuum infiltration hot-press process method was proposed innovatively. Based on this method, a vacuum infiltration hot-press process experimental system was designed and developed. The system mainly includes a fiber pre-forming module, a vacuum heating infiltration module, a hot-press curing molding module, and a data acquisition control module. The modular division of the preparation process and unified data collection monitoring greatly improve the stability and controllability of the preparation process. In addition, the VIHPS has the advantages of low production cost and excellent product performance, which lays a foundation for the preparation and market application of CFRP composite materials.
- (2)
- Curing time, temperature, pressure, and vacuum degree are important process parameters for preparing CFRP by VIHPS. These key parameters directly affect the infiltration effect of the composite material, and finally affect the macroscopic properties of the material. Therefore, these important parameters need to be strictly controlled during the preparation process. The experimental research showed that, when the conditions of natural curing at 0 MPa + 6 h + 25 °C, vacuum heating curing at −0.05 MPa + 30 min + 80 °C, and hot-press curing at 0 MPa + 5 min + 50 °C were applied, the performance of the prepared composite material was the best, and the bending strength of the composite material reached 790 MPa.
- (3)
- By observing and analyzing the CFRP infiltration structure and bending fracture morphology prepared under reasonable process parameters, it can be found that the infiltration structure inside the material was ideal, and the resin was evenly distributed between the carbon-fiber bundles without obvious holes, delamination, warping, and other preparation defects. The resin matrix was tightly combined with the carbon fiber. From the bending fracture morphology of the composite material, it can also be found that the carbon fiber was in a fractured and pulled out state, the resin was evenly distributed in the carbon fiber, and the internal microstructure of the material was ideal, thereby confirming the feasibility of the vacuum impregnation hot-press molding process test system.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Process Methods | Resin Transfer Molding | Winding Molding | Autoclave Molding | Compression Molding |
---|---|---|---|---|
Pros | ◆ Efficiency ◆ Little pollution ◆ Adaptability | ◆ Tubular
◆ Productivity ◆ Reliability | ◆ Large parts ◆ Low porosity ◆Stability | ◆ Cost ◆ Low internal stress ◆ Controllability |
Cons | ◆ High porosity ◆ Controllability | ◆ Cost ◆ Adaptability | ◆ Energy consumption ◆ Cost | ◆ Infiltration effect ◆ Preparation efficiency |
Fiber Type | Tensile Strength (MPa) | Young’s Modulus (GPa) | Density (g/cm3) | Elongation (%) | Monofilament Diameter (10−6 m) |
---|---|---|---|---|---|
T700 | 4900 | 230 | 1.80 | 2.0 | 7 |
Curing Mixed Ratio/ Mass Ratio | Natural Curing Time (h) | Vacuum Heating Curing Temperature (°C) | Vacuum Heating Curing Time (min) | Pressure Heating Curing Temperature (°C) | Pressure Heating Curing Pressure (MPa) | Pressure Heating Curing Time (min) |
---|---|---|---|---|---|---|
4:1 | 6 | 80 | 30 | 50 | 0.7 | 5 |
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Ma, Y.; Wang, J.; Zhao, Y.; Wei, X.; Ju, L.; Chen, Y. A New Vacuum Pressure Infiltration CFRP Method and Preparation Experimental Study of Composite. Polymers 2020, 12, 419. https://doi.org/10.3390/polym12020419
Ma Y, Wang J, Zhao Y, Wei X, Ju L, Chen Y. A New Vacuum Pressure Infiltration CFRP Method and Preparation Experimental Study of Composite. Polymers. 2020; 12(2):419. https://doi.org/10.3390/polym12020419
Chicago/Turabian StyleMa, Yuqin, Jie Wang, Yatao Zhao, Xinliang Wei, Luyan Ju, and Yi Chen. 2020. "A New Vacuum Pressure Infiltration CFRP Method and Preparation Experimental Study of Composite" Polymers 12, no. 2: 419. https://doi.org/10.3390/polym12020419
APA StyleMa, Y., Wang, J., Zhao, Y., Wei, X., Ju, L., & Chen, Y. (2020). A New Vacuum Pressure Infiltration CFRP Method and Preparation Experimental Study of Composite. Polymers, 12(2), 419. https://doi.org/10.3390/polym12020419