用材料挤压法制造连续金属丝增强聚合物基复合材料

IF 6.5 2区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES
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引用次数: 0

摘要

通过材料挤压进行 3D 打印能够将聚合物材料用于多种应用。不过,与其他材料(如金属或环氧树脂)和加工方法(如压缩成型或注塑成型)相比,聚合物材料的机械性能较低,因此一般用于原型制作而非创建功能部件。碳纤维、玻璃纤维和凯夫拉纤维已被用作加固材料,在制造功能部件方面取得了非常积极的效果。然而,人们很少关注金属丝加固。在这项研究中,介绍了一种通过材料挤压制造具有更高机械性能的连续金属丝增强聚合物基复合材料的新策略。研究人员定制了一台多材料三维打印机,用于制造单向增强铝丝/聚乳酸基复合材料的试样,铝丝体积分数为 15%或 25%。对复合材料的微观结构进行了分析,以了解加工过程中孔隙的形成。这些结果还显示了制造技术在精确控制铝丝位置和取向方面的潜力。与纯聚乳酸相比,加入体积分数为 25% 的铝丝后,弹性模量增加了 600%,拉伸强度增加了 63%。这些结果表明,尽管界面强度相对较低,但聚合物基体和掺入的铝丝之间的载荷传递效率很高。总之,这种新颖的策略为通过材料挤压制造用金属丝增强的高体积分数热塑性聚合物复合层压板提供了可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Material extrusion fabrication of continuous metal wire-reinforced polymer–matrix composites

3D printing via material extrusion is capable of using polymeric materials for a large range of applications. They are generally used, however, for prototyping as opposed to creating functional parts due to their lower mechanical properties in comparison to other materials, such as metals or epoxies, and processing methods, such as compression molding or injection molding. Carbon fiber, glass fiber, and kevlar have been used as reinforcement materials with very positive results in terms of creating functional parts. However, little focus has been placed on metallic wire reinforcement. In this investigation, a novel strategy to manufacture continuous metallic wire-reinforced polymer–matrix composites with increased mechanical properties by material extrusion is presented. A customized multimaterial 3D printer was built and used to fabricate coupons of unidirectionally reinforced Al wire/PLA matrix composites with either 15% or 25% wire volume fraction. The microstructure of the composites was analyzed to understand the formation of porosity during processing. These results also showed the potential of the manufacturing technique to precisely control the wire location and orientation. Incorporation of a volume fraction 25% of Al wires led to a 600% increase in elastic modulus and a 63% increase in tensile strength compared to pure PLA. These results indicate an efficient load transfer between the polymer matrix and the incorporated wires, despite exhibiting a relatively low interface strength. Overall, the novel strategy opens the possibility to manufacture high volume fraction composite laminates of thermoplastic polymers reinforced with metallic wires by material extrusion.

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来源期刊
Composites Communications
Composites Communications Materials Science-Ceramics and Composites
CiteScore
12.10
自引率
10.00%
发文量
340
审稿时长
36 days
期刊介绍: Composites Communications (Compos. Commun.) is a peer-reviewed journal publishing short communications and letters on the latest advances in composites science and technology. With a rapid review and publication process, its goal is to disseminate new knowledge promptly within the composites community. The journal welcomes manuscripts presenting creative concepts and new findings in design, state-of-the-art approaches in processing, synthesis, characterization, and mechanics modeling. In addition to traditional fiber-/particulate-reinforced engineering composites, it encourages submissions on composites with exceptional physical, mechanical, and fracture properties, as well as those with unique functions and significant application potential. This includes biomimetic and bio-inspired composites for biomedical applications, functional nano-composites for thermal management and energy applications, and composites designed for extreme service environments.
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