3D characterization of the microstructure of LPBF- fabricated Inconel 718 alloy

Jinwu Kang, YuanHang Huangb, Hai Yub
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Abstract

Laser powder bed fusion method is popularly applied in the additive manufacturing of metal parts. The void defect and microstructure are the main factors which determine their mechanical properties. However, the characterization of microstructure and cavities is two dimensional, which is hard to show the spatial profile. In this paper, in order to explore the microstructure and defects in three dimensions, the combined continuously slicing and microstructure observation was used to investigate the microstructure of an Inconel 718 sample. The sample was sliced 468 layers with thickness of 1 µm by xenon ion beam, a 142.8 µm* 107 µm* 46.8 µm microstructure cube was reconstructed. From the 3D model, the melt pool, cavity, pore and grains and their orientations were analyzed. The results provide spatial features of its microstructure. The equi-axed grains are among the coarse column grains, and some are the original grains of insufficiently melt or totally unmelt powder particles. The results tell the difference of the two kinds of voids, i.e., cavity and pore.
LPBF制备Inconel 718合金微观组织的三维表征
激光粉末床熔融法是金属零件增材制造中广泛应用的一种方法。气孔缺陷和微观组织是决定其力学性能的主要因素。然而,微观结构和空腔的表征是二维的,难以显示空间轮廓。本文采用连续切片和显微组织观察相结合的方法,对Inconel 718试样的显微组织进行了三维研究。利用氙离子束将样品切成厚度为1µm的468层,重构出142.8µm* 107µm* 46.8µm的微观结构立方体。从三维模型出发,分析了熔池、空腔、孔隙和颗粒及其取向。结果提供了其微观结构的空间特征。等轴晶粒位于粗柱状晶粒之间,部分为未充分熔化或完全未熔化粉末颗粒的原始晶粒。结果表明了两种孔洞的区别,即空腔和孔隙。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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