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熔融沉积制造中碳纳米管增强聚醚醚酮纳米复合材料的结晶演变基础和性能。

Fundamentals of Crystalline Evolution and Properties of Carbon Nanotube-Reinforced Polyether Ether Ketone Nanocomposites in Fused Filament Fabrication.

机构信息

Department of Materials Science & Engineering, Texas A&M University, College Station, Texas 77843, United States.

Department of Mechanical Engineering, Texas A&M University, College Station, Texas 77843, United States.

出版信息

ACS Appl Mater Interfaces. 2023 May 10;15(18):22506-22523. doi: 10.1021/acsami.3c01307. Epub 2023 Apr 26.

Abstract

As fused filament fabrication (FFF) continues to gain popularity, many studies are turning to nanomaterials or optimization of printing parameters to improve the materials' properties; however, many overlook how materials formulation and additive manufacturing (AM) processes cooperatively engineer the evolution of properties across length scales. Evaluating the in-process evolution of the nanocomposite using AM will provide a fundamental understanding of the material's microstructure, which can be tailored to create unique characteristics in functionality and performance. In this study, the crystallinity behavior of polyetheretherketone (PEEK) was studied in the presence of carbon nanotubes (CNTs) as a nucleation aid for improved crystallization during FFF processing. Using various characterization techniques and molecular dynamics simulations, it was discovered that the crystallization behavior of extruded filaments is very different from that of 3D printed roads. Additionally, the printed material exhibited cold crystallization, and the CNT addition increased the crystallization of printed roads, which were amorphous without CNT addition. Tensile strength and modulus were increased by as much as 42 and 51%, respectively, due to higher crystallinity during printing. Detailed knowledge on the morphology of PEEK-CNT used in FFF allows gaining a fundamental understanding of the morphological evolution occurring during the AM process that in turn enables formulating materials for the AM process to achieve tailored mechanical and functional properties, such as crystallinity or conductivity.

摘要

随着熔融沉积制造(FFF)的持续普及,许多研究都转向使用纳米材料或优化打印参数来改善材料性能;然而,许多人忽略了材料配方和增材制造(AM)工艺如何协同设计来实现各尺度上性能的演变。使用 AM 评估纳米复合材料的过程演变将提供对材料微观结构的基本理解,这可以通过定制来创造独特的功能和性能特征。在这项研究中,研究了聚醚醚酮(PEEK)在碳纳米管(CNT)存在下的结晶行为,CNT 作为成核助剂,以提高 FFF 加工过程中的结晶度。通过使用各种表征技术和分子动力学模拟,发现挤出长丝的结晶行为与 3D 打印道路的结晶行为非常不同。此外,打印材料表现出冷结晶,并且 CNT 的添加增加了打印道路的结晶度,而没有 CNT 添加时,打印道路呈非晶态。由于打印过程中的结晶度提高,拉伸强度和模量分别提高了 42%和 51%。详细了解 FFF 中使用的 PEEK-CNT 的形态有助于深入了解 AM 过程中发生的形态演变,从而为 AM 工艺配方材料以实现定制的机械和功能特性,例如结晶度或导电性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0396/10853907/5bd62d11e8cd/am3c01307_0002.jpg

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