熔融纤维制备填充改性ABS 3D打印复合材料的力学性能

A. C. de Mendonça, D. K. Cavalcanti, H. D. de Queiroz, J. Neto, F. Chaves, M. Banea
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引用次数: 0

摘要

快速原型制造(也称为增材制造,AM)是一种快速发展的工艺,在各种工业部门(即航空航天、汽车、医疗等)中有越来越多的新应用。然而,尽管AM制造结构的价格与零件复杂性解耦具有巨大优势,材料性能(主要由细丝材料和印刷参数决定)仍然是一个重要的限制因素。在这种背景下,开发用于更广泛应用的新型细丝材料具有巨大的潜力。在本研究中,评估了天然(curauá)和合成(玻璃纤维)微米级填料增强剂(粉末)在丙烯腈-丁二烯-苯乙烯(ABS)长丝制备中的影响。填料由重量分数(~1%)控制,并通过挤出制备细丝。根据ASTM标准,使用市售的3D打印机打印用于机械表征的拉伸和弯曲试样。通过光学显微镜对拉伸试验后的断裂形态进行分析,以评估填料对材料沉积和孔隙形成的影响。除了失效时的应变外,拉伸性能没有显著变化,而观察到作为填料的函数的更显著的弯曲强度变化。填料对裂缝表面的孔隙密度有显著影响。事实证明,这种简单的制造技术可以产生新的细丝材料,这些材料可以提高机械性能或扩大应用范围(例如,由于天然填料的亲水性,一次性塑料在自然界中的分解时间更快,疏水性合成填料在海洋环境应用中的吸水率更低)。
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Mechanical Characterization of Filler Modified ABS 3D Printed Composites Made via Fused Filament Fabrication
Rapid prototyping (also known as additive manufacturing, AM) is a quickly developing process with increasing new applications in a large variety of industrial sectors (i.e., aerospace, automotive, medical, among others.) However, despite the great advantage of a decoupled price to part complexity of an AM fabricated structure, the material properties (largely governed by filament material and printing parameters) still present a significant limiting factor. In this context, the development of new filament materials for a wider range of applications has great potential. In this study, the influence of micro-scale filler reinforcement (powders), both natural (curauá) and synthetic (glass fibre), in the fabrication of an Acrylonitrile Butadiene Styrene (ABS) filament was evaluated. The filler was controlled by weight fraction (~1%) and the filament was fabricated via extrusion. A commercially available 3D printer was used to print tensile and flexural specimens for mechanical characterization as per ASTM standards. The fracture morphology was analysed after tensile testing via optical microscopy in order to evaluate the effect of the fillers on the material deposition and void formation. No significant variation in the tensile properties was reported, except for the strain at failure, while more significant flexural strength variation was observed as a function of filler material. The fillers presented a significant effect on the void density of the fractured surface. It was demonstrated that this simple fabrication technique can generate novel filament materials that may enhance the mechanical properties or widen the range of application (e.g., faster decomposition times in nature for single-use plastics due to the hydrophilic nature of the natural filler and lower water absorption of the hydrophobic synthetic filler for marine environment applications).
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来源期刊
CiteScore
0.80
自引率
0.00%
发文量
1
审稿时长
16 weeks
期刊最新文献
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