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Rapid manufacturing of copper components using 3D printing and ultrasonic assisted pressureless sintering: Experimental investigations and process optimization

机译:使用3D打印和超声辅助无压烧结快速制造铜组件:实验研究和工艺优化

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The present work deals with the comprehensive study of ultrasonic and sintering parameters effect on the rapid manufacturing of pure copper components by ultrasonic assisted pressureless sintering and 3D printing. The customized sintering setup with the stepped horn was designed and fabricated for the experiments. First, the ultrasonic assisted sintering process was compared to conventional pressureless sintering process in regards of physical and mechanical properties of fabricated samples. The study revealed that the ultrasonic vibrations increased the contact area between the particles and raised the local heating for large sintering necks. Thus, the ultrasonic assistance enhanced the properties of the fabricated parts. Further, response surface methodology was used to design the set of experiments with sintering temperature, heating rate, soaking time and ultrasonic power percentage intensity to study the parameters effect. The analysis of variance was performed to analyze the significant contribution of parameters on relative density, compressive yield strength, and volumetric shrinkage. The sintering temperature and ultrasonic power percentage intensity dominated the other parameters with respect to responses. The less effect of low ultrasonic power intensity and short soaking time at high sintering temperatures was revealed by the significant interactions. Furthermore, the genetic algorithm based multi-objective optimization was used for the parameters optimization on maximizing relative density, compressive yield strength and minimizing the volumetric shrinkage. The efficacy of the developed method was tested by the fabrication of a customized heat sink on the optimized parameters.
机译:本工作涉及超声和烧结参数对超声辅助无压烧结和3D打印快速制造纯铜组件的影响的综合研究。为实验设计和制造了带有阶梯状焊头的定制烧结装置。首先,就制成样品的物理和机械性能而言,将超声辅助烧结工艺与常规无压烧结工艺进行了比较。研究表明,超声振动增加了颗粒之间的接触面积,并提高了大型烧结颈的局部加热。因此,超声辅助提高了制造零件的性能。此外,采用响应面方法设计了一组烧结温度,加热速率,保温时间和超声功率百分比强度的实验,以研究参数效果。进行方差分析以分析参数对相对密度,抗压屈服强度和体积收缩的显着贡献。烧结温度和超声功率百分比强度在响应方面主导了其他参数。显着的相互作用揭示了在较高的烧结温度下较低的超声功率强度和较短的均热时间的较小影响。此外,基于遗传算法的多目标优化用于最大化相对密度,压缩屈服强度和最小化体积收缩的参数优化。通过在优化参数上制造定制散热器来测试所开发方法的功效。

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