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Synthesis of Nanocrystalline AZ91 Magnesium Alloy Dispersed with 15 vol. Submicron SiC Particles by Mechanical Milling

机译:通过机械研磨合成分散有15%(体积)亚微米SiC颗粒的纳米晶AZ91镁合金

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摘要

The development of a magnesium matrix composite with a high content of dispersions using conventional liquid-phase process is a great challenge, especially for nanometer/submicron particles. In this work, mechanical milling was employed to prepare nanocrystalline AZ91 dispersed with 15 vol.% submicron SiC particles (SiCp/AZ91). AZ91 with no SiCp was applied as a comparative study with the same mechanical milling. In order to investigate the mechanism of dispersing, the morphology evolution of powders and the corresponding SiCp distribution were observed. As the scanning electron microscope (SEM) analysis exhibited, the addition of SiCp accelerated the smashing of AZ91 particles, which promoted the dispersion of SiCp in AZ91. Thus, after mechanical milling, 15 vol.% SiCp, which was smashed from 800 to 255 nm, got uniformly distributed in the Mg matrix. Based on X-ray diffraction (XRD) results, part of the Mg17Al12 precipitate got dissolved, and an Al-supersaturated Mg solid solution was formed. The transmission electron microscopy (TEM) results showed that the ultimate Mg grain (32 nm) of milled SiCp/AZ91 was much smaller than that of milled AZ91 (64 nm), which can be attributed to a pinning effect of submicron SiCp. After mechanical milling, the hardness of SiCp/AZ91 reached 185 HV, which was 185% higher than the original AZ91 and 33% higher than milled AZ91, due to fine Mg grain and submicron dispersions.
机译:使用常规液相方法开发具有高分散体含量的镁基复合材料是一个巨大的挑战,特别是对于纳米/亚微米颗粒而言。在这项工作中,采用机械研磨来制备分散有15%(体积)亚微米SiC颗粒(SiCp / AZ91)的纳米晶体AZ91。没有SiCp的AZ91用作相同机械铣削的对比研究。为了研究分散机理,观察了粉末的形貌演变和相应的SiCp分布。随着扫描电子显微镜(SEM)分析的出现,SiCp的添加加速了AZ91颗粒的粉碎,从而促进了SiCp在AZ91中的分散。因此,在机械研磨之后,从800nm粉碎至255nm的15体积%的SiCp均匀地分布在Mg基体中。根据X射线衍射(XRD)结果,部分Mg17Al12沉淀物溶解,并形成Al过饱和的Mg固溶体。透射电子显微镜(TEM)结果表明,研磨后的SiCp / AZ91的最终Mg晶粒(32 nm)比研磨后的AZ91(64 nm)小得多,这可归因于亚微米SiCp的钉扎效应。机械研磨后,SiCp / AZ91的硬度达到185 HV,比原来的AZ91高185%,比研磨的AZ91高33%,这是由于Mg晶粒细小和亚微米级分散所致。

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