4.7 Article

High strength carbon-fiber reinforced polyamide 6 composites additively manufactured by screw-based extrusion

期刊

COMPOSITES SCIENCE AND TECHNOLOGY
卷 229, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.compscitech.2022.109707

关键词

Carbon fibers; Mechanical properties; Screw -extrusion

资金

  1. Natural Science Foundation of Zhejiang Province, China [LQ22E010001, LQ22A02005, LY20E0500008]
  2. Pioneer and Leading Goose R & D Program of Zhejiang Province [2022C01163]
  3. Project of Key Laboratory of Urban Rail Transit Intelligent Operation and Maintenance Technology & Equipment of Zhejiang Province, China [ZSDRTZZ2020003]
  4. Zhejiang Normal University [2020ZS04]

向作者/读者索取更多资源

In this study, high strength PA6-CF composite parts are additively manufactured by directly feeding composite pellets into a 3D printer. The effects of CF content on the rheological and mechanical properties of the composites are investigated. Mechanical tests show that CF significantly enhances the strength of the 3D-printed composites, and the results are in agreement with the analytical model.
The highly versatile fused filament fabrication (FFF) allows on-demand manufacturing of carbon fiber reinforced plastics (CFRP) structures with intricate geometries. However, the intrinsic low throughput and comparatively low strength of FFF have posed major hurdles for large-scale industrial applications. In this work, high strength PA6-CF composite parts containing up to 35 wt% CF are additively manufactured by directly feeding the composite pellets into a custom-designed screw-extrusion 3D printer. The effects of CF content on the rheological and mechanical properties of the PA6-CF composites are investigated in detail. Mechanical tests show that CF significantly enhances the strength of the 3D-printed composites. With 25 wt% CF, the tensile strength reaches maximum at 169.7 MPa, which is 3.2 times higher than the unfilled PA6, and is also among the highest for the 3D printed CFRPs reinforced by short fibers. In-depth microstructural characterization reveals the printed part re-tains long carbon fibers (average length over 200 mu m) and has comparatively low porosity (2.93% at 25 wt% CF), which are conducive to achieve high mechanical strength. The mechanical strength also agrees reasonably well with the analytical model based on Kelly-Tyson equation.

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