首页> 美国卫生研究院文献>Nanomaterials >Effects of Filament Extrusion 3D Printing and Hot-Pressing on Electrical and Tensile Properties of Poly(Lactic) Acid Composites Filled with Carbon Nanotubes and Graphene
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Effects of Filament Extrusion 3D Printing and Hot-Pressing on Electrical and Tensile Properties of Poly(Lactic) Acid Composites Filled with Carbon Nanotubes and Graphene

机译:长丝挤压3D打印和热压对碳纳米管和石墨烯填充的聚乳酸复合材料的电和拉伸性能的影响

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摘要

In this study, the effects of three processing stages: filament extrusion, 3D printing (FDM), and hot-pressing are investigated on electrical conductivity and tensile mechanical properties of poly(lactic) acid (PLA) composites filled with 6 wt.% of multiwall carbon nanotubes(MWCNTs), graphene nanoplatelets (GNPs), and combined fillers. The filaments show several decades’ higher electrical conductivity and 50–150% higher values of tensile characteristics, compared to the 3D printed and the hot-pressed samples due to the preferential orientation of nanoparticles during filament extrusion. Similar tensile properties and slightly higher electrical conductivity are found for the hot-pressed compared to the 3D printed samples, due to the reduction of interparticle distances, and consequently, the reduced tunneling resistances in the percolated network by hot pressing. Three structural types are observed in nanocomposite filaments depending on the distribution and interactions of fillers, such as segregated network, homogeneous network, and aggregated structure. The type of structural organization of MWCNTs, GNPs, and combined fillers in the matrix polymer is found determinant for the electrical and tensile properties. The crystallinity of the 3D printed samples is higher compared to the filament and hot-pressed samples, but this structural feature has a slight effect on the electrical and tensile properties. The results help in understanding the influence of processing on the properties of the final products based on PLA composites.
机译:在这项研究中,研究了三个加工阶段的影响:长丝挤出,3D打印(FDM)和热压对填充6 wt%的聚乳酸(PLA)复合材料的电导率和拉伸机械性能的影响。多壁碳纳米管(MWCNT),石墨烯纳米片(GNP)和组合填料。与3D打印样品和热压样品相比,由于长丝挤出过程中纳米粒子的优先取向,因此长丝显示出数十年的导电率和更高的拉伸特性值50-150%。与3D打印样品相比,由于3D打印样品具有相似的拉伸性能和稍高的电导率,这是由于颗粒间距离的减小,因此,通过热压降低了渗滤网络中的隧穿电阻。根据填料的分布和相互作用,在纳米复合长丝中观察到三种结构类型,如偏析网络,均质网络和聚集结构。发现基体聚合物中的MWCNT,GNP和组合填料的结构组织类型决定了电性能和拉伸性能。与长丝和热压样品相比,3D打印样品的结晶度更高,但是此结构特征对电气和拉伸性能影响不大。结果有助于理解加工对基于PLA复合材料的最终产品性能的影响。

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