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3D pore structure characterization and hardness in a powder bed fusion-processed fully amorphous Zr-based bulk metallic glass

机译:3D孔结构表征和硬度在粉末床融合过程中完全无定形Zr基散装金属玻璃

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Recently, fabrication of bulk metallic glasses (BMGs) components with complex shapes has been realized using laser powder bed fusion (PBF). Initial defects such as porosity inherent to the PBF process can significantly degrade the mechanical integrity of the BMGs components. In spite of intensive studies on pore structures in 3D-printed crystalline alloys, pore structures in 3D-printed fully amorphous BMGs have not been characterized due to the difficulties in achieving large-scale fully amorphous structures. In the present work, the pore characteristics of PBF-processed fully amorphous Zr-based BMGs were systematically studied. The amorphous structure of the printed parts was first verified using X-ray diffraction (XRD). A non-destructive high-resolution X-ray micro-computed tomography (micro-CT) technique was then applied to evaluate the inner 3D pore structure, while microstructures below the resolution of X-ray micro-CT were examined in 2D using scanning electron microscopy (SEM). The printed amorphous parts can reach a total volumetric porosity as small as 0.45%. The distribution of pore size and pore sphericity were evaluated for the PBF-processed BMGs samples with different porosities, where two observed pore features were irregular large lack-of-fusion pores, and smaller gas-induced round pores. Furthermore, correlations were found between porosity, pore size and morphology. Finally, hardness tests at various loads revealed that while the intrinsic properties were constant irrespective of laser processing, the overall mechanical properties of the PBF-processed BMGs samples are dominated by pore characteristics. While the densest printed BMG sample had a comparable macroscale hardness to the as-cast material, an increase in porosity of similar to 8% led to a decrease in HV5 hardness of similar to 17%. The presented results provide a detailed analysis of pore characteristics, and their impact on mechanical properties of PBF-processed BMGs, for further experimental and computational studies of structure-property relationships in this materials class.
机译:最近,使用激光粉床融合(PBF)来实现具有复杂形状的散装金属玻璃(BMGS)组分的制造。诸如PBF过程固有的孔隙率的初始缺陷可以显着降低BMGS组分的机械完整性。尽管关于3D印刷结晶合金中的孔隙结构的深入研究,但由于难以实现大规模完全无定形结构的困难,3D印刷完全无定形BMG中的孔结构尚未表征。在本作工作中,系统地研究了PBF加工完全无定形ZR基BMG的孔隙特征。首先使用X射线衍射(XRD)验证印刷部件的无定形结构。然后施加非破坏性的高分辨率X射线微计算断层扫描(Micro-CT)技术以评估内部3D孔结构,而使用扫描电子将在2D中检查X射线微型CT的分辨率下方的微观结构显微镜(SEM)。印刷的无定形部件可达到小于0.45%的总容量孔隙率。评价孔径和孔隙球的分布,用于具有不同孔隙的PBF加工的BMGS样品,其中两个观察到的孔隙特征是不规则的大融合孔,以及较小的气体诱导的圆孔。此外,在孔隙,孔径和形态之间发现相关性。最后,各种载荷的硬度试验显示,虽然内在性质与激光加工无关,但是PBF加工的BMGS样品的整体力学性能由孔特性主导。虽然最密度的印刷BMG样品对铸造材料具有相当的宏观状硬度,但孔隙率的增加导致HV5硬度降低至17%。所呈现的结果提供了对孔隙特性的详细分析,以及它们对PBF加工BMG的力学性能的影响,用于本材料类中结构性质关系的进一步实验和计算研究。

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