微等离子喷涂机械化学合成Ti/HfB2复合粉末制备金属陶瓷涂层

IF 0.9 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
M. E. Goshkoderya, T. I. Bobkova, N. A. Serdyuk, A. A. Kashirina, M. V. Staritsyn, M. V. Khromenkov
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引用次数: 0

摘要

本文报道了钛/二硼化铪复合粉末在金属陶瓷涂层中的应用。采用高能机械化学合成法制备了复合粉体。起始组分为PTOM-1钛粉(作为基体粉末)和二硼化铪粉(作为补强剂)。采用显微组织分析对复合粉体进行了表征,并测定了复合粉体的粒度组成。形貌分析表明,随着机械化学合成混合物中补强剂含量的增加,嵌入钛颗粒表层的二硼化铪颗粒数量增加。对粉末粒度组成的评价表明,粒径范围为10 ~ 60 μm的颗粒占颗粒体积分数最大,为7% ~ 10%。采用横向抛光显微切片法测定了微等离子喷涂涂层的显微硬度。扫描电镜图像显示,增加初始混合物中二硼化铪的百分比,增加了涂层中HfB2的含量。在所检查的所有抛光显微切片中,涂层牢固地粘附在基材上,没有通过孔隙。当二硼化铪含量从10%提高到60%时,镀层的显微硬度随二硼化铪含量的增加而增加。含60 wt %二硼化铪的复合粉末显微硬度最高,达到1076 HV。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Preparation of Metal–Ceramic Coatings by Microplasma Spraying of Mechanochemically Synthesized Ti/HfB2 Composite Powders

Preparation of Metal–Ceramic Coatings by Microplasma Spraying of Mechanochemically Synthesized Ti/HfB2 Composite Powders

This paper reports on the use of titanium/hafnium diboride composite powders for producing metal–ceramic coatings. The composite powders were prepared by high-energy mechanochemical synthesis. The starting components used were PTOM-1 titanium powder (as a matrix powder) and hafnium diboride powder (as a reinforcing agent). The composite powders were characterized by microstructural analysis and their particle size composition was determined. Examination of their morphology showed that the number of hafnium diboride particles embedded in the surface layer of the titanium particles increased with increasing reinforcing agent content in the mixture for mechanochemical synthesis. Assessment of the particle size composition of the powders showed that the size range 10–60 μm accounted for the largest volume fraction of the particles: from 7 to 10%. The microhardness of the coatings produced by microplasma spraying was determined using their transverse polished microsections. Scanning electron microscopy images showed that increasing the percentage of hafnium diboride in the starting mixtures increased the amount of HfB2 in the coatings. In all of the polished microsections examined, the coating was firmly adherent to the substrate material, without through pores. As the hafnium diboride content was raised from 10 to 60 wt %, the microhardness of the coatings increased in proportion to it. The composite powder containing 60 wt % hafnium diboride had the highest microhardness: 1076 HV.

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来源期刊
Inorganic Materials
Inorganic Materials 工程技术-材料科学:综合
CiteScore
1.40
自引率
25.00%
发文量
80
审稿时长
3-6 weeks
期刊介绍: Inorganic Materials is a journal that publishes reviews and original articles devoted to chemistry, physics, and applications of various inorganic materials including high-purity substances and materials. The journal discusses phase equilibria, including P–T–X diagrams, and the fundamentals of inorganic materials science, which determines preparatory conditions for compounds of various compositions with specified deviations from stoichiometry. Inorganic Materials is a multidisciplinary journal covering all classes of inorganic materials. The journal welcomes manuscripts from all countries in the English or Russian language.
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