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采用改良3D打印机生产的连续碳纤维复合材料的热机械性能

Thermomechanical performance of continuous carbon fibre composite materials produced by a modified 3D printer.

作者信息

Le Duigou A, Grabow M, Castro M, Toumi R, Ueda M, Matsuzaki R, Hirano Y, Dirrenberger J, Scarpa F, D'Elia R, Labstie K, Lafont U

机构信息

Université de Bretagne Sud, IRDL UMR CNRS 6027, Bionics Group, Centre de recherche C Huygens, 56100 Lorient, France.

Nihon University, 1-8-14 Kanda-surugadai, Chiyoda, Tokyo 101-8308, Japan.

出版信息

Heliyon. 2023 Feb 15;9(3):e13581. doi: 10.1016/j.heliyon.2023.e13581. eCollection 2023 Mar.

Abstract

First of all, this article aimed to evidence the role of a modified printer developed for continuous carbon fibre reinforced PolyAmide (cCF/PA6-I) together with the use of a fully open slicing step on the printing quality and the longitudinal/transverse tensile and in-plane shear properties. A comprehensive assessment of the microstructure and properties with a similar material (cCF/PA6-I), but produced with a commercial printer (i.e., Markforged® MarkTwo) has been achieved. Our customised printer and the open slicer used have made possible to better control the print conditions (i.e., layer height and distance between filaments), to reduce the porosity from more than 10% to about 2% and improve the mechanical properties. Moreover, the understanding of the behaviour of these 3D printed composites with wide-ranging external temperatures is mandatory for future use in a severe environment and/or development of new thermally active 4D printed composites. The 3D printed cCF/PA6-I composites have been then thermomechanically characterised along different printing directions (0, 90 and ± 45°) from -55 to +100 °C. Unlike the longitudinal properties that hardly change with temperature, the transverse and in-plane shear stiffness and strength of these 3D printed composites were particularly sensitive to temperature variations, with decreases of 25-30% and 30-55%, respectively. This was due to the high sensitivity of the polymer matrix, the fibre/matrix and interfilament interfaces when the composites were loaded along those directions, because damages induced by internal thermal stresses. Fractography has also been carried out to reveal damage mechanisms.

摘要

首先,本文旨在证明一种为连续碳纤维增强聚酰胺(cCF/PA6-I)开发的改良打印机的作用,以及使用完全开放的切片步骤对打印质量和纵向/横向拉伸及面内剪切性能的影响。已经对使用商用打印机(即Markforged® MarkTwo)生产的类似材料(cCF/PA6-I)的微观结构和性能进行了全面评估。我们定制的打印机和使用的开放切片器使得能够更好地控制打印条件(即层高和丝间距离),将孔隙率从超过10%降低到约2%,并改善机械性能。此外,了解这些3D打印复合材料在广泛外部温度下的行为对于未来在恶劣环境中的使用和/或新型热活性4D打印复合材料的开发至关重要。然后,对3D打印的cCF/PA6-I复合材料在-55至+100°C的不同打印方向(0、90和±45°)上进行了热机械表征。与几乎不随温度变化的纵向性能不同,这些3D打印复合材料的横向和面内剪切刚度及强度对温度变化特别敏感,分别下降了25-30%和30-55%。这是由于当复合材料沿这些方向加载时,聚合物基体、纤维/基体和丝间界面的高敏感性,因为内部热应力会导致损伤。还进行了断口分析以揭示损伤机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3973/9981917/e4d37dbda12a/ga1.jpg

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