Nowka Maximilian, Ruge Katja, Schulze Lukas, Hilbig Karl, Vietor Thomas
Institute for Engineering Design, Technische Universität Braunschweig, Hermann-Blenk-Str. 42, 38108 Brunswick, Germany.
Polymers (Basel). 2024 Oct 14;16(20):2891. doi: 10.3390/polym16202891.
Additive manufacturing (AM) of components using material extrusion (MEX) offers the potential for the integration of functions through the use of multi-material design, such as sensors, actuators, energy storage, and electrical connections. However, there is a significant gap in the availability of electrical composite properties, which is essential for informed design of electrical functional structures in the product development process. This study addresses this gap by systematically evaluating the resistivity (DC, direct current) of 14 commercially available filaments as unprocessed filament feedstock, extruded fibers, and fabricated MEX-structures. The analysis of the MEX-structures considers the influence of anisotropic electrical properties induced by the selective material deposition inherent to MEX. The results demonstrate that composites containing fillers with a high aspect ratio, such as carbon nanotubes (CNT) and graphene, significantly enhance conductivity and improve the reproducibility of MEX structures. Notably, the extrusion of filaments into MEX structures generally leads to an increase in resistivity; however, composites with CNT or graphene exhibit less reduction in conductivity and lower variability compared to those containing only carbon black (CB) or graphite. These findings underscore the importance of filler selection and composition in optimizing the electrical performance of MEX structures.
使用材料挤出(MEX)技术对部件进行增材制造(AM),通过采用多材料设计(如传感器、致动器、能量存储和电气连接)实现功能集成成为可能。然而,在电复合材料特性的可用性方面存在显著差距,这对于产品开发过程中电气功能结构的明智设计至关重要。本研究通过系统评估14种市售长丝作为未加工长丝原料、挤出纤维和制造的MEX结构的电阻率(直流,直流电)来弥补这一差距。对MEX结构的分析考虑了MEX固有的选择性材料沉积所引起的各向异性电性能的影响。结果表明,含有高纵横比填料(如碳纳米管(CNT)和石墨烯) 的复合材料显著提高导电性并改善MEX结构的可重复性。值得注意的是,将长丝挤出成MEX结构通常会导致电阻率增加;然而,与仅含有炭黑(CB)或石墨的复合材料相比,含有CNT或石墨烯的复合材料的导电性降低较少且变异性较低。这些发现强调了填料选择和组成在优化MEX结构电性能方面的重要性。