Performance of Short Fiber Interlayered Reinforcement Thermoplastic Resin in Additive Manufacturing
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials for Testing and Research
2.2. 3D Printing Equipment with Fiber Placement
2.3. Performance Test and Cross—Section Observation
2.4. Post-Treatment
2.5. Laser—Assisted Preheating
2.6. Short Fibers Reinforcement Mechanism
3. Results and Discussion
3.1. Effect of Short Fiber Content on Performance of the Additive Manufactured Thermoplastic Resin Parts
3.1.1. Mechanical Properties Test
3.1.2. SEM Observation
3.1.3. Discussion
3.2. Effect of Short Fiber Length on Performance
3.2.1. Mechanical Properties Test
3.2.2. Discussion
3.3. Effect of Post-Treatment on Performance
3.3.1. Mechanical Performance Test and SEM Observation
3.3.2. XRD Testing
3.3.3. Discussion
3.4. Effect of Laser-Assisted Preheating on Performance
4. Conclusions
- (a)
- When the fiber content was 0.5 wt% in a single layer, the tensile strength of the specimen reached 38 MPa, which is about 15% higher than that of the pure resin matrix. When the fiber content continuous to increase SFs the addition of SFs created many voids, resulting in a decrease in the mechanical properties.
- (b)
- When the fiber lengths were 0.5 mm and 1 mm, which are longer than the critical fiber length, the fiber played the main bearing role, and the composite had the best mechanical properties. As the fiber length increased to 2 mm, the fibers were liable to overlap and move, which resulted in a decrease of the bonding quality between interfaces.
- (c)
- Post-treatment was used on the specimens to improve the interfacial bonding quality. When the post-treatment temperature was higher than the glass transition temperature, fusion occurred between the printed layers, and the interface bonding quality was improved. However, the mechanical properties of the printed parts under different post-treatment conditions exhibited no statistically significant differences, and the range of mechanical properties was within 5%.
- (d)
- The method of laser-assisted preheating raised the interlayer temperature to the critical temperature, and then the interpenetrating diffusion of the resin increased, which promoted the impregnation between the fiber and resin. When the laser power was 10 W, the tensile strength of the laser-assisted preheated printed specimen was 59.20 MPa, which is an increase of 56.78% compared to the unheated specimen.
Author Contributions
Funding
Conflicts of Interest
References
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Parameters | Value |
---|---|
Hatch spacing—mm | 1 |
Layer thickness—mm | 0.5 |
Printing speed—mm/s | 20 |
Diameter of nozzle—mm | 1 |
Temperature of liquefier—°C | 220 |
Infill density—% | 100 |
Infill patterns | Concentric |
Specimen Geometry Variable | Value | ISO GB/T 1447–2005–Type Geometry |
---|---|---|
Height (H)—mm | 200 | |
Width (b)—mm | 18 | |
Thickness (d)—mm | 3 | |
Standard distance (H0)—mm | 50 | |
Number of shells (Ns) | 1 | |
Number of layers (Nl) | 6 |
Materials | Annealing Temperature (°C) | Number of Specimens |
---|---|---|
PLA + 0.5%CF | 80 | 5 |
100 | 5 | |
120 | 5 | |
140 | 5 |
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Fan, C.; Shan, Z.; Zou, G.; Zhan, L.; Yan, D. Performance of Short Fiber Interlayered Reinforcement Thermoplastic Resin in Additive Manufacturing. Materials 2020, 13, 2868. https://doi.org/10.3390/ma13122868
Fan C, Shan Z, Zou G, Zhan L, Yan D. Performance of Short Fiber Interlayered Reinforcement Thermoplastic Resin in Additive Manufacturing. Materials. 2020; 13(12):2868. https://doi.org/10.3390/ma13122868
Chicago/Turabian StyleFan, Congze, Zhongde Shan, Guisheng Zou, Li Zhan, and Dongdong Yan. 2020. "Performance of Short Fiber Interlayered Reinforcement Thermoplastic Resin in Additive Manufacturing" Materials 13, no. 12: 2868. https://doi.org/10.3390/ma13122868
APA StyleFan, C., Shan, Z., Zou, G., Zhan, L., & Yan, D. (2020). Performance of Short Fiber Interlayered Reinforcement Thermoplastic Resin in Additive Manufacturing. Materials, 13(12), 2868. https://doi.org/10.3390/ma13122868