初始粉末特性对选择性激光熔合后ZhS6K级合金微浮雕特征的影响

IF 0.5 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
A. N. Raevskikh, E. B. Chabina, E. V. Filonova
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引用次数: 0

摘要

分析了ZhS6K级合金颗粒的外观、表面和内部结构及其化学成分。结果表明,可以通过分数组成、填充时的填充密度和扫描速度来控制界面(轨迹、结晶细胞、hatch block边界、晶粒、相以及孔隙和裂纹等不连续结构)的预设状态的形成,以获得更好的材料质量。对试样的初始结构状态进行了研究。建立了晶胞边界结构、分散颗粒结构和碎片结构之间的相互关系。结果表明,在相同的功率和扫描策略下,所研究的样品具有不同的结构特征。使用光学金相和扫描电子显微镜(SEM)进行了分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Effect of Initial Powder Characteristics on Microrelief Features in the ZhS6K Grade Alloy after Selective Laser Fusion

Effect of Initial Powder Characteristics on Microrelief Features in the ZhS6K Grade Alloy after Selective Laser Fusion

The appearance of ZhS6K grade alloy granules, the surface and internal structure, and the chemical composition thereof have been analyzed. It is shown that one can control the formation of a preset state of interfaces (tracks, crystallization cells, hatch block boundaries, grains, phases, and discontinuities such as pores and cracks) through the fractional composition, packing density upon filling, and scanning speed in order to obtain a better material quality. The initial structural state of the samples has been studied. An interrelation between the structure of crystallization cell boundaries, dispersed particles, and the structure of fragments has been established. It is shown that all the studied samples have different structural features at the same power and scanning strategy. The analysis has been performed using the methods of optical metallography and scanning electron microscopy (SEM).

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来源期刊
Inorganic Materials: Applied Research
Inorganic Materials: Applied Research Engineering-Engineering (all)
CiteScore
0.90
自引率
0.00%
发文量
199
期刊介绍: Inorganic Materials: Applied Research  contains translations of research articles devoted to applied aspects of inorganic materials. Best articles are selected from four Russian periodicals: Materialovedenie, Perspektivnye Materialy, Fizika i Khimiya Obrabotki Materialov, and Voprosy Materialovedeniya  and translated into English. The journal reports recent achievements in materials science: physical and chemical bases of materials science; effects of synergism in composite materials; computer simulations; creation of new materials (including carbon-based materials and ceramics, semiconductors, superconductors, composite materials, polymers, materials for nuclear engineering, materials for aircraft and space engineering, materials for quantum electronics, materials for electronics and optoelectronics, materials for nuclear and thermonuclear power engineering, radiation-hardened materials, materials for use in medicine, etc.); analytical techniques; structure–property relationships; nanostructures and nanotechnologies; advanced technologies; use of hydrogen in structural materials; and economic and environmental issues. The journal also considers engineering issues of materials processing with plasma, high-gradient crystallization, laser technology, and ultrasonic technology. Currently the journal does not accept direct submissions, but submissions to one of the source journals is possible.
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