Non-Equilibrium Solidification Behavior With Solute Trapping Associated With Powder Characteristics During Electron Beam Additive Manufacturing

Yufan Zhao, Huakang Bian, Hao Wang, K. Aoyagi, Yujie Cui, Y. Lei, K. Yamanaka, A. Chiba
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引用次数: 1

Abstract

For components built by powder bed fusion with electron beam (PBF-EB), the resulting microstructure arising from non-equilibrium solidification–microsegregation and the formation of interdendritic phases significantly affects the mechanical properties and hot cracking resistance. Notably, the powder characteristics influence heat absorption and conduction, thereby altering the molten pool behavior and solidification parameters. However, the effect of powder feedstock on non-equilibrium solidification during PBF has not been widely investigated. In this study, a CoCrMo alloy was built using powders prepared by gas-atomization (GA) and plasma rotating electrode process (PREP). Under the given operating conditions, the samples built with the two powders were experimentally characterized and their compression properties were compared. By performing multi-scale numerical simulations, powder melting and solidification were visualized and analyzed to elucidate the mechanism through which the powder characteristics influence the non-equilibrium solidification behavior during PBF-EB. The study revealed that upon appropriated size control, compared to the GA powder, the PREP powder had a smaller specific surface area and higher sphericity; thus, the generated powder layer exhibited higher heat absorption and dissipation rates. Therefore, a high solidification rate is facilitated, thereby suppressing microsegregation. The findings contribute to PBF knowledge related to feedstock, thus proving to be an essential reference for selecting and optimizing metallic powders applicable to additive manufacturing.
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电子束增材制造过程中与粉末特性相关的溶质俘获非平衡凝固行为
对于采用电子束粉末床熔炼(PBF-EB)的构件,非平衡凝固-微偏析和枝晶间相的形成对其力学性能和抗热裂性有显著影响。值得注意的是,粉末特性影响热吸收和导热,从而改变熔池行为和凝固参数。然而,粉末原料对PBF过程中非平衡凝固的影响尚未得到广泛的研究。本研究采用气相雾化(GA)和等离子体旋转电极工艺(PREP)制备了CoCrMo合金粉末。在给定的操作条件下,对两种粉末制成的样品进行了实验表征,并对其压缩性能进行了比较。通过多尺度数值模拟,对粉末熔化和凝固过程进行可视化分析,阐明粉末特性影响PBF-EB非平衡凝固行为的机理。研究表明,在适当的粒度控制下,与GA粉体相比,PREP粉体具有更小的比表面积和更高的球形度;因此,生成的粉末层具有更高的吸热和散热速率。因此,有利于高凝固速率,从而抑制微偏析。研究结果有助于增加与原料相关的PBF知识,从而证明是选择和优化适用于增材制造的金属粉末的重要参考。
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