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Effect of Nano-SiC on Microstructure and Mechanical Properties of AZ91 Magnesium Alloy Processed by Thixomolding

机译:纳米SiC对触轴氧化术AZ91镁合金组织和力学性能的影响

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Magnesium injection molding technology was used to produce Mg based nano-composites. AZ91 chips were mixed with 5 wt.% of β-SiC nanoparticles in solid state and fed to pre-heated cylinder of prototype injection molding machine. Using screw rotation, granules were transferred to nozzle area at simultaneous intensive shearing and mixing of slurry containing reinforcement phases. Injection process was conducted at 595°C, which corresponded to about 90% liquid phase and cast to steel die preheated to 150°C. Detailed characterization of microstructure was performed using SEM and TEM microscopes. Composite microstructure consisted of α(Mg) globular grains with size of about 60 μm and volume of 7-10% surrounded by mixture of proeutectic magnesium solid solution with irregular shape and average size of 12 μm as well as fine eutectic mixture (α(Mg) + β-Mg_(17)Al_(12)). Additionally, TEM-BF image showed β-SiC nanoparticles with size of 20-50 nm in the area of eutectic. Hardness and compression strength of AZ91 nano-composites increased from 58 to 75 HV and from 200 to 235 MPa, respectively.
机译:镁注塑技术用于生产基于Mg的纳米复合材料。将AZ91碎片与5重量%的碎片混合。固态中的β-SiC纳米颗粒的%并加入预热的原型注塑机圆柱体。使用螺旋旋转,在同时密集的剪切和混合含有增强相的混合时将颗粒转移到喷嘴区域。注射方法在595℃下进行,该液相对应于约90%的液相并浇铸至预热至150℃的钢模。使用SEM和TEM显微镜进行微观结构的详细表征。复合微观结构由α(Mg)球状粒径为约60μm,体积为7-10%,围绕着前苄镁固溶体的混合物,具有不规则形状和平均尺寸为12μm以及细小共晶混合物(α(mg )+β-Mg_(17)AL_(12))。另外,TEM-BF图像在共晶面积显示尺寸为20-50nm的β-SiC纳米粒子。 AZ91纳米复合材料的硬度和压缩强度分别从58升至75HV和200至235MPa。

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