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Study of the Wear Resistance of Conductive Poly Lactic Acid Monofilament 3D Printed onto Polyethylene Terephthalate Woven Materials

机译:导电聚乳酸单丝3D打印在聚对苯二甲酸乙二醇酯编织材料上的耐磨性研究

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摘要

Wear resistance of conductive Poly Lactic Acid monofilament 3D printed onto textiles, through Fused Deposition Modeling (FDM) process and their electrical conductivity after abrasion are important to consider in the development of smart textiles with preserved mechanical and electrical properties. The study aims at investigating the weight loss after abrasion and end point of such materials, understanding the influence of the textile properties and 3D printing process parameters and studying the impact of the abrasion process on the electrical conductivity property of the 3D printed conductive polymers onto textiles. The effects of the 3D printing process and the printing parameters on the structural properties of textiles, such as the thickness of the conductive Poly Lactic Acid (PLA) 3D printed onto polyethylene terephthalate (PET) textile and the average pore sizes of its surface are also investigated. Findings demonstrate that the textile properties, such as the pattern and the process settings, for instance, the printing bed temperature, impact significantly the abrasion resistance of 3D printed conductive Poly Lactic Acid (PLA) onto PET woven textiles. Due to the higher capacity of the surface structure and stronger fiber-to-fiber cohesion, the 3D printed conductive polymer deposited onto textiles through Fused Deposition Modeling process have a higher abrasion resistance and lower weight loss after abrasion compared to the original fabrics. After printing the mean pore size, localized at the surface of the 3D-printed PLA onto PET textiles, is five to eight times smaller than the one of the pores localized at the surface of the PET fabrics prior to 3D printing. Finally, the abrasion process did considerably impact the electrical conductivity of 3D printed conductive PLA onto PET fabric.
机译:通过熔融沉积建模(FDM)工艺印刷到纺织品上的3D导电聚乳酸单丝的耐磨性及其在磨损后的电导率对于开发具有机械和电气性能保留的智能纺织品非常重要。该研究旨在调查此类材料在磨损后的重量损失和终点,了解纺织品特性和3D打印工艺参数的影响,并研究磨损工艺对3D打印导电聚合物在纺织品上的导电性能的影响。 3D打印过程和打印参数对纺织品结构特性的影响,例如在聚对苯二甲酸乙二酯(PET)纺织品上印刷的3D导电聚乳酸(PLA)的厚度及其表面的平均孔径,调查。研究结果表明,纺织品特性(例如图案和工艺设置,例如印刷床温度)会显着影响3D打印的导电聚乳酸(PLA)对PET机织纺织品的耐磨性。由于更高的表面结构容量和更强的纤维与纤维之间的内聚力,与原始织物相比,通过熔融沉积建模工艺沉积到纺织品上的3D打印导电聚合物具有更高的耐磨性和更低的重量损失。印刷后,位于3D打印的PLA表面上的平均孔径在PET纺织品上,比位于3D打印之前的PET织物表面上的孔径之一小五至八倍。最后,磨蚀过程确实对3D打印的导电PLA到PET织物上的导电性产生了很大影响。

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