Carbon Fiber 3D Printing: Technologies and Performance—A Brief Review
Abstract
:1. Introduction
2. Results
2.1. 3D-Printed Continuous Carbon Fiber-Reinforced Composites
2.2. 3D-Printed Short Carbon Fiber-Reinforced Composites
3. Comparison of Results
4. Future Developments
5. Discussion and Conclusions
Funding
Conflicts of Interest
References
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Reference | Type of Study Carried Out | Results | Type of Carbon Fibers |
---|---|---|---|
[36] | The elastic properties of fiber-reinforced 3D-printed structures were evaluated, and these elastic properties were predicted using a stiffness averaging (VAS) method. |
| Continuous |
[42] | 3D printing of continuous fiber-reinforced thermoplastic composites (CFRTPC) was studied. Continuous carbon fiber and PLA filaments were used in this printing process, respectively, which were simultaneously fed into the fused deposition additive manufacturing (FDM) process. |
| Continuous |
[43] | One of the main objectives of the study is to analyze the effect of impact damage on the structural integrity of 3D-printed composites compared to traditional prepreg composites. In particular, the build orientation, layer thickness, and volumetric content of the fibers are examined. |
| Continuous |
[15] | This study analyzes the use of 3D printing technology to produce continuous carbon fiber-reinforced polylactic acid (PLA) composites. |
| Continuous |
[19] | In this study, the performance of continuous carbon-reinforced composites made using the fused deposition (FDM) 3D printing technique with a nylon matrix was evaluated. |
| Continuous |
[21] | In this work, continuous carbon fiber-reinforced poly-ether-ether-ketone (CCF/PEEK) composites were studied. They were prepared using extrusion-based 3D printing, with particular attention to the issue of delamination of the intermediate layers. |
| Continuous |
[22] | In this work, an approach was used to strengthen polycarbonate (PC) 3D-printed parts by inserting continuous carbon fiber (CF) bundles. |
| Continuous |
[24] | In this study, a new layered object additive manufacturing (LOM)-inspired approach was introduced for 3D printing continuous carbon fiber-reinforced CFRTP using prepreg composite sheets. |
| Continuous |
[26] | In this work, continuous carbon fiber-reinforced poly-ether-ether-ketone (CCF/PEEK) composites were studied using the laser-assisted lamination object manufacturing (LA-LOM) technique. |
| Continuous |
[55] | In this study, materials produced through FDM additive manufacturing techniques were characterized at a mechanical level, using PLA and PLA+CF reinforced with short carbon fibers with a percentage of 15%. |
| Short |
[56] | In this work, the impact of the addition of carbon fibers on the mechanical properties of the samples was studied. |
| Short |
[57] | In this study, the fracture properties (stress intensity factor and energy release rate) of materials produced by FDM 3D printing using polylactic acid (PLA) and short carbon fiber (CF)-reinforced composites were evaluated. |
| Short |
[62] | In this work, 3D printing compositional blends for FFF were examined, in which carbon fibers are embedded in a thermoplastic matrix to increase its strength and stiffness. |
| Short–continuous |
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Marabello, G.; Borsellino, C.; Di Bella, G. Carbon Fiber 3D Printing: Technologies and Performance—A Brief Review. Materials 2023, 16, 7311. https://doi.org/10.3390/ma16237311
Marabello G, Borsellino C, Di Bella G. Carbon Fiber 3D Printing: Technologies and Performance—A Brief Review. Materials. 2023; 16(23):7311. https://doi.org/10.3390/ma16237311
Chicago/Turabian StyleMarabello, Gabriele, Chiara Borsellino, and Guido Di Bella. 2023. "Carbon Fiber 3D Printing: Technologies and Performance—A Brief Review" Materials 16, no. 23: 7311. https://doi.org/10.3390/ma16237311
APA StyleMarabello, G., Borsellino, C., & Di Bella, G. (2023). Carbon Fiber 3D Printing: Technologies and Performance—A Brief Review. Materials, 16(23), 7311. https://doi.org/10.3390/ma16237311