用于高导热的石墨烯纳米片和聚合物复合材料的熔融沉积建模(FDM):一个小型综述

Valentina Guerra, Chaoying Wan, Tony McNally
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引用次数: 6

摘要

聚合物复合材料和石墨烯家族的二维材料继续吸引着极大的兴趣,因为它们具有散热的潜力,从而延长了电子和其他设备的使用寿命。这种复合材料可以使用熔融沉积模型3D打印成复杂的定制结构,具有增强的性能,包括不同方向的导热性。虽然对于FDM在大规模和大批量生产中的局限性存在争议(例如,生产时间长,需要昂贵的打印机),但FDM是制造需要有效热管理的小型物体的创新解决方案,它是制造(微型)电子元件的有效替代方案。基于石墨烯的功能复合材料的FDM研究论文很少。在这篇小型综述中,我们描述了通过FDM成功打印这些复合材料所面临的许多技术挑战,包括取向效应、空洞形成、打印和进料速度、喷嘴和打印床温度,以及它们在决定FDM制造的任何复合材料产品的导热性方面的作用。我们还将这些初步报告与其他相关碳质填料(如多壁碳纳米管和碳纤维)的FDM进行了比较。
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Fused deposition modelling (FDM) of composites of graphene nanoplatelets and polymers for high thermal conductivity: a mini-review

Composites of polymers and the graphene family of 2D materials continue to attract great interest due their potential to dissipate heat, thus extending the in-service life of electronic and other devices. Such composites can be 3D printed using Fused Deposition Modelling into complex bespoke structures having enhanced properties, including thermal conductivity in different directions. While there are controversial opinions on the limitations of FDM for large-scale and high volume production (e.g. long production times, and expensive printers required), FDM is an innovative solution to the manufacture of small objects where effective thermal management is required and it is a valid alternative for the manufacture of (micro)-electronic components. There are few papers published on the FDM of functional composite materials based on graphene(s). In this mini-review, we describe the many technical challenges that remain to successful printing of these composites by FDM, including orientation effects, void formation, printing and feeding rates, nozzle and printing bed temperatures and the role each has in determining the thermal conductivity of any composite product made by FDM. We also compare these initial reports with those on FDM of other and related carbonaceous fillers, such as multi-walled carbon nanotubes and carbon fibre.

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