Influence of FDM-3D Printing Parameters on the Tensile Property and ILSS of CCF/PA and CF/PEEK Composites

The mechanical properties of continuous-fiber-reinforced composites in FDM-3D printing are significantly influenced by process parameters. However, research in this area is constrained by printing equipment, control software, and material preparation. This study examines how the tensile and interlaminar shear properties of CCF/PA and CF/PEEK are affected by continuous-fiber nozzle temperature, platform temperature, and printing speed. Studies indicate that enhancing the nozzle temperature can notably improve mechanical properties by enhancing material flowability, ensuring consistent fiber encapsulation and reducing pore defects. Increasing the platform temperature initially boosts both tensile strength and ILSS, but, beyond a certain point, these properties decline. Inadequate platform temperature can result in uneven infiltration and diffusion among deposited CCF/PA paths, leading to void defects. Conversely, excessive platform temperature can cause semi-molten CCF/PA layers to be vulnerable to nozzle pressure and scraping, resulting in continuous-fiber debonding and interlayer tearing. Furthermore, lower printing speeds extend the melt wetting time between adjacent paths, promoting diffusion and adhesion for enhanced performance. Following an experimental investigation, the optimal parameters are identified as a nozzle temperature of 295 °C, a platform temperature of 240 °C, and a printing speed of 3 mm/s. This research provides valuable guidance for the practical production of continuous-fiber-reinforced composites using FDM-3D printing.

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Publication Details

Journal
Coatings
Published
2026-09-06
DOI
https://doi.org/10.3390/coatings16091057
Primary Topic
Additive Manufacturing and 3D Printing Technologies
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article
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article

Influence of FDM-3D Printing Parameters on the Tensile Property and ILSS of CCF/PA and CF/PEEK Composites

Bin Zou, Yulong Zhang, Ziyu Huang, Guijie Wang et al.
Coatings
Additive Manufacturing and 3D Printing Technologies
article

Influence of FDM-3D Printing Parameters on the Tensile Property and ILSS of CCF/PA and CF/PEEK Composites

Bin Zou, Yulong Zhang, Ziyu Huang, Guijie Wang, Weimin Huang, Peng Wang
article en

Abstract

The mechanical properties of continuous-fiber-reinforced composites in FDM-3D printing are significantly influenced by process parameters. However, research in this area is constrained by printing equipment, control software, and material preparation. This study examines how the tensile and interlaminar shear properties of CCF/PA and CF/PEEK are affected by continuous-fiber nozzle temperature, platform temperature, and printing speed. Studies indicate that enhancing the nozzle temperature can notably improve mechanical properties by enhancing material flowability, ensuring consistent fiber encapsulation and reducing pore defects. Increasing the platform temperature initially boosts both tensile strength and ILSS, but, beyond a certain point, these properties decline. Inadequate platform temperature can result in uneven infiltration and diffusion among deposited CCF/PA paths, leading to void defects. Conversely, excessive platform temperature can cause semi-molten CCF/PA layers to be vulnerable to nozzle pressure and scraping, resulting in continuous-fiber debonding and interlayer tearing. Furthermore, lower printing speeds extend the melt wetting time between adjacent paths, promoting diffusion and adhesion for enhanced performance. Following an experimental investigation, the optimal parameters are identified as a nozzle temperature of 295 °C, a platform temperature of 240 °C, and a printing speed of 3 mm/s. This research provides valuable guidance for the practical production of continuous-fiber-reinforced composites using FDM-3D printing.

CoatingsVol. 16(9)
Shandong University (CN), Shandong University of Science and Technology (CN)
Openalex Percentile: Top 18%
Additive Manufacturing and 3D Printing Technologies
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Influence of FDM-3D Printing Parameters on the Tensile Property and ILSS of CCF/PA and CF/PEEK Composites — Bin Zou, Yulong Zhang, et al. · Coatings (2026) | TGRS Research Map | TGRS