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通过添加碳化硅晶须和微波辐射增强聚丙烯3D打印结构

Enhancement of Polypropylene 3D-Printed Structures via the Addition of SiC Whiskers and Microwave Irradiation.

作者信息

Antonio Erik L S, Anik Arefin M, Kuksenok Olga, Luzinov Igor

机构信息

Department of Materials Science and Engineering, Clemson University, Clemson, South Carolina 29634, United States.

出版信息

ACS Appl Mater Interfaces. 2023 Aug 23;15(33):40042-40053. doi: 10.1021/acsami.3c07464. Epub 2023 Aug 8.

Abstract

We report on enhancing the mechanical and structural characteristics of polypropylene (PP) three-dimensional (3D)-printed structures fabricated via fused filament fabrication (FFF) by employing composite PP-based filament with subsequent microwave (MWV) treatment. The composite filament contained a minute (0.9 vol %) fraction of silicon carbide whiskers (SiCWs) and was prepared via melt blending of PP pellets with SiCW using an extruder. The surface of the whiskers was modified with trimethoxy(octadecyl) silane to improve compatibility between the polar SiCW and nonpolar PP matrix. We employed SiCWs in composite filament because of the whiskers' high thermal conductivity and ability to generate heat locally under MWV irradiation. Indeed, we were able to conduct the heating of printed parts by MWV without sacrificing the structural integrity and improving the overall adhesion between the 3D-printed polymer layers. Our modeling captures an extent of heating upon MWV irradiation observed in our experiments. In general, utilization of the composite PP/SiCW filament significantly improved the printed parts' mechanical characteristics and sintering level compared to those made from pure PP filament. Specifically, after the MWV treatment, the adjusted (for density) storage modulus of the PP/SiCW material was just ∼20% lower than that for the PP sample obtained by conventional compression molding. After the MWV irradiation, Young's modulus, yield stress, and toughness of the printed structures were increased by ∼65, 53, and 55%, respectively. We attribute the improvement of mechanical properties via MWV treatment to enhancing the entanglement level at the weld.

摘要

我们报告了通过使用基于聚丙烯(PP)的复合长丝并随后进行微波(MWV)处理,来增强通过熔融长丝制造(FFF)制备的聚丙烯(PP)三维(3D)打印结构的机械和结构特性。复合长丝含有微量(0.9体积%)的碳化硅晶须(SiCWs),并通过使用挤出机将PP粒料与SiCW熔融共混制备而成。晶须表面用三甲氧基(十八烷基)硅烷改性,以改善极性SiCW与非极性PP基体之间的相容性。我们在复合长丝中使用SiCWs是因为晶须具有高导热性并且能够在MWV辐射下局部产生热量。实际上,我们能够通过MWV对打印部件进行加热,而不会牺牲结构完整性,并改善3D打印聚合物层之间的整体粘附性。我们的模型捕捉到了在我们的实验中观察到的MWV辐射下的加热程度。一般来说,与由纯PP长丝制成的部件相比,使用复合PP / SiCW长丝显著改善了打印部件 的机械特性和烧结水平。具体而言,经过MWV处理后,PP / SiCW材料调整后的(针对密度)储能模量仅比通过传统压缩成型获得的PP样品低约20%。经过MWV辐照后,打印结构的杨氏模量、屈服应力和韧性分别提高了约65%、53%和55%。我们将通过MWV处理使机械性能得到改善归因于提高了焊缝处的缠结程度。

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