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Multi-Material Wire Arc Additive Manufacturing of low and high alloyed aluminium alloys with in-situ material analysis

机译:多材料丝弧添加剂制造低和高合金铝合金具有原位材料分析

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摘要

In recent years, the interest in the improved functionalisation of Additive Manufacturing components through multi-material solutions has increased because of the new possibilities in product design. In this work, an advanced Wire Arc Additive Manufacturing process for fabrication of multi-material structures of different aluminium alloys was investigated. Mechanical properties such as tensile strength, yield strength, fracture elongation, and hardness were analysed for multi-material parts and compared with the mechanical properties of mono-material parts. It was found that the strength of multi-material components was limited by the properties of the individual aluminium alloys and not by those of the material transition zones. Microsections and EDX line scans revealed a smooth transition zone without any significant defects. Furthermore, process monitoring approaches for quality assurance of the correct material composition in such multi-material structures were investigated. Different sensor data were captured during multi-material Wire Arc Additive Manufacturing to identify and observe various characteristics of the process. It was shown that the voltage, current, acoustic, and spectral emission data can be used for in-situ monitoring to detect the chemical differences between the two aluminium alloys 6060 and 5087. Characteristic patterns in the frequency range were found, which can be attributed to a frequency shift that occurred due to the different material properties. Spectral analysis revealed changes in the ratios of green and blue light emission to red light emission, which was also due to the different magnesium contents.
机译:近年来,由于产品设计的新可能性,通过多材料解决方案改善了添加剂制造部件的改善功能的兴趣增加。在这项工作中,研究了用于制造不同铝合金的多重材料结构的先进的线弧添加剂制造方法。为多重材料部件分析了抗拉强度,屈服强度,断裂伸长和硬度等机械性能,并与单材料部件的机械性能相比。发现多材料成分的强度受各种铝合金的性质的限制,而不是由材料过渡区的性质的限制。微观方式和EDX线扫描显示出一个平滑的过渡区,没有任何显着的缺陷。此外,研究了这种多材料结构中正确材料组合物质量保证的过程监测方法。在多材料线弧添加剂制造期间捕获不同的传感器数据,以识别和观察过程的各种特性。结果表明,电压,电流,声学和光谱发射数据可用于原位监测,以检测两个铝合金6060和5087之间的化学差异。找到频率范围内的特征模式,其可以归因于到由于不同的材料属性而发生的频移。光谱分析显示了绿色和蓝色发光比率的变化,以红色发光,这也是由于不同的镁含量。

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