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Analysis of Microstructure and Properties of a Ti–AlN Composite Produced by Selective Laser Melting

机译:选择性激光熔炼Ti-AlN复合材料的组织和性能分析

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摘要

Selective Laser Melting (SLM) is a manufacturing technique that is currently used for the production of functional parts that are difficult to form by the traditional methods such as casting or CNC (Computer Numerical Control) cutting from a wide range of metallic materials. In our study, a mixture of commercially pure titanium (Ti) and 15% at. aluminum nitride (AlN) was Selective Laser Melted to form three-dimensional objects. The obtained 4 mm edge cubes with an energy density that varied from 70 to 140 J/mm were examined in terms of their microstructure, chemical and phase composition, porosity, and Vickers microhardness. Scanning Electron Microscopy (SEM) observations of the etched samples showed inhomogeneities in the form of pores and unmelted and partly melted AlN particles in the fine-grained dendritic matrix, which is typical for titanium nitrides and titanium aluminum nitrides. The AlN particles remained unmelted in samples, but no porosity was observed in the interface area between them and the dendritic matrix. Additionally, samples fabricated with the presintering step had zones with different sizes of dendrites, suggesting a differing chemical composition of the matrix and the possibility of the formation of the phases forming an Ti–Al–N ternary system. The chemical composition in the microareas of the samples was determined using Energy Dispersive X-Ray Spectroscopy (EDS) and revealed differences in the homogeneity of the samples depending on the SLM process parameters and the additional presintering step. The phase composition, examined using X-ray Diffraction analysis (XRD), showed that samples were formed from Ti, TiN, and AlN phases. Porosity tests carried out using a computer microtomography revealed porosities in a range from 7% to 17.5%. The formed material was characterized by a relatively high hardness exceeding 700 HV over the entire cross-section, which depended on the manufacturing conditions.
机译:选择性激光熔化(SLM)是一种制造技术,目前用于生产功能部件,这些功能部件难以通过传统方法(例如铸造或CNC(计算机数控)切割)从多种金属材料中形成。在我们的研究中,使用的是工业纯钛(Ti)和15%at的混合物。氮化铝(AlN)被选择性激光熔化形成三维物体。检查了能量密度在70至140 J / mm之间变化的4 mm边缘立方体的微观结构,化学和相组成,孔隙率和维氏显微硬度。扫描样品的扫描电子显微镜(SEM)观察显示,细孔状树枝状基体中的孔隙,未熔融和部分熔融的AlN​​颗粒均不均匀,这是氮化钛和氮化钛铝的典型特征。 AlN颗粒在样品中仍未​​熔化,但在它们与树状基质之间的界面区域未观察到孔隙。此外,用预烧结步骤制造的样品具有不同大小的枝晶区域,表明基体的化学成分不同,并且可能形成形成Ti–Al–N三元体系的相。使用能量色散X射线光谱(EDS)确定了样品微区中的化学成分,并根据SLM工艺参数和附加的预烧结步骤揭示了样品均质性的差异。使用X射线衍射分析(XRD)检查的相组成表明,样品是由Ti,TiN和AlN相形成的。使用计算机显微断层摄影术进行的孔隙率测试显示,孔隙率范围为7%至17.5%。所形成的材料的特征在于,在整个横截面上的相对较高的硬度超过700 HV,这取决于制造条件。

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