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Microstructure and Phase Analysis of 3D-Printed Components Using Bronze Metal Filament

机译:青铜金属丝三维印刷部件的微观结构及相位分析

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Typical metal 3D printing processes with powders require either a laser or electron beam as the heating source. In this work, an alternative non-expensive metal 3D printing process based on the fused deposition modeling process using metal filled filament is studied. Using bronze filament as a feedstock, the microstructures, phases, compositions of the filament, as-printed, and sintered specimens are analyzed. The 3D printing process basically does not modify the morphology and phases of the filament. Sintering temperature below 832 degrees C is recommended. Above 832 degrees C, there are substantial oxidation reactions leading to the formation of copper oxide and cassiterite shell structure around the bronze core. The mechanical properties of the 3D-printed sample are measured using the three-point bending test. The measured flexural strength is 27.9 MPa, and the modulus of elasticity is 1.2 GPa. This study provides important information for applying the bronze filament in future engineering applications.
机译:具有粉末的典型金属3D印刷工艺需要激光或电子束作为加热源。在这项工作中,研究了基于使用金属填充灯丝的熔融沉积建模过程的替代非昂贵金属3D打印过程。使用青铜丝作为原料,分析微结构,相,锥形,印刷和烧结样品的纤维的组合物。 3D打印过程基本上不会改变灯丝的形态和阶段。建议烧结温度低于832摄氏度。在832℃以上,存在显着的氧化反应,导致铜芯周围形成氧化铜和卡斯特钛壳结构。使用三点弯曲试验测量3D印刷样品的机械性能。测量的弯曲强度为27.9MPa,弹性模量为1.2GPa。本研究提供了在未来工程应用中应用青铜灯丝的重要信息。

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