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Research on influencing factors and its optimization of metal powder injection molding without mold via an innovative 3D printing method

机译:通过创新的3D打印方法对无模具金属粉末注射成型的影响因素及其优化研究

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Using laboratory-made three-dimensional (3D) printing equipment, an innovative 3D printing process without a mold, which was based on metal powder injection molding (MIM), was developed for the fabrication of complex 3D metal and alloy components. Copper powder and paraffin wax were selected for the composition of the copper paste composite. The study was performed to analyse the effects of printing process parameters on the layer-by-layer injection and forming mechanism of the copper paste. Furthermore, the effects of heating parameters during the sintering process on the microstructure and some physical properties of the samples were investigated. The results revealed that the sintering temperature of the copper paste was initiated at a lower temperature (ca. 300 °C) than that of bulk copper metal. The optimal conditions of the heating process of copper paste were explored. The optimal conditions of the sintering temperature were above 950 °C with a holding time of 120 min. Herein, a metal component was manufactured with a complex 3D structure, dense microstructure, superior metallurgical bonding and a flat surface based on our research. The results of our study demonstrate the potential to manufacture metal and alloy components by means of a low cost 3D printing technique.
机译:使用实验室制造的三维(3D)打印设备,基于金属粉末注射成型(MIM)的无模具创新3D打印工艺被开发出来,用于制造复杂的3D金属和合金部件。选择铜粉和石蜡作为铜浆复合材料的组成。进行该研究以分析印刷工艺参数对铜浆的逐层注入和形成机理的影响。此外,研究了烧结过程中加热参数对样品的微观结构和一些物理性能的影响。结果表明,铜浆的烧结温度始于比块状铜金属更低的温度( 300°C)。探索了铜浆加热工艺的最佳条件。烧结温度的最佳条件是高于950°C,保持时间为120分钟。在此,根据我们的研究,制造出具有复杂的3D结构,致密的微观结构,优良的冶金结合和平坦表面的金属部件。我们的研究结果证明了通过低成本3D打印技术制造金属和合金部件的潜力。

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