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Improving surface roughness of the 3D printed part using electroless plating

机译:使用化学镀改善3D打印部件的表面粗糙度

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The effect of electroless metallic coating on 3D printed acrylonitrile-butadiene-styrene plastic parts surface has been studied. Owing to its excellent toughness, good-dimensional reliability, good-process capability, chemical resistance and cost-effectiveness, acrylonitrile-butadiene-styrene is used for fabrication of parts using a 3D open source printer. These parts are further metallic coated using electroless copper deposition technique. Two different surface preparation processes, namely aluminium paint paste and aluminium epoxy paste have been used for electroless coating. After the surface conditioning of parts using these methods, copper is deposited electrolessly using acidic solution, containing 12.5 wt% copper sulphate with 7.5 wt% of sulphuric acid. Deposition of copper, for two different methods, has been carried out using different temperature conditions and different time of deposition. In the first case, the temperature of the solution is initially kept at 45 +/- 2 celcius and is allowed to come to the room temperature as the deposition is completed. In the second case, the temperature of the solution is maintained at room temperature throughout the process. Further, copper-deposited 3D printed parts were characterized based on their surface roughness measurement, electrical conductivity measurement, scanning electron microscopy, energy dispersive spectroscopy and adhesion evaluation test. It has been found that both the methods used for coating show better electrical performance and more uniform copper deposition. Adhesion between copper layers and 3D printed acrylonitrile-butadiene-styrene substrates is found to have good strength for Al-Epoxy-coated parts.
机译:研究了化学镀层对3D打印的丙烯腈-丁二烯-苯乙烯塑料零件表面的影响。由于其出色的韧性,良好的尺寸可靠性,良好的加工能力,耐化学药品性和成本效益,丙烯腈-丁二烯-苯乙烯用于3D开源打印机制造零件。这些部分还使用化学镀铜技术进行了金属涂层。化学镀覆使用了两种不同的表面处理工艺,即铝漆浆和环氧铝浆。使用这些方法对零件进行表面处理后,使用酸性溶液化学沉积铜,该溶液含有12.5 wt%的硫酸铜和7.5 wt%的硫酸。对于两种不同的方法,已经使用不同的温度条件和不同的沉积时间进行了铜的沉积。在第一种情况下,溶液的温度最初保持在45 +/- 2摄氏度,并在沉积完成后使其恢复到室温。在第二种情况下,在整个过程中溶液的温度均保持在室温下。此外,基于其表面粗糙度测量,电导率测量,扫描电子显微镜,能量色散光谱和附着力评估测试,对铜沉积的3D打印部件进行了表征。已经发现,两种用于涂覆的方法都表现出更好的电性能和更均匀的铜沉积。发现铜层与3D打印的丙烯腈-丁二烯-苯乙烯基材之间的粘合力对涂有Al-Epoxy的零件具有良好的强度。

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