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首页> 外文期刊>Materials & design >The effect of production parameters on microstructure and wear resistance of powder metallurgy A1-A1_2O_3 composite
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The effect of production parameters on microstructure and wear resistance of powder metallurgy A1-A1_2O_3 composite

机译:生产参数对粉末冶金A1-A1_2O_3复合材料组织和耐磨性的影响

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摘要

Aluminum matrix composite is one of the most conventional types of metal matrix composites. This paper deals with the effect of production parameters on wear resistance of AI-AI_2O_3 composites. Alumina powder with a particle size of 12,3 and 48 n and pure aluminum powder with particle size of 30 n were used. The amount of added alumina powder was up to 20%. Ball milling was utilized to blend the powders. The range of sintering temperature and time were 500, 550 and 600 ℃ and 30, 45, 60 and 90 min respectively. It was found that increasing sintering temperature results in increasing density, hardness and wear resistance and homogenization of the microstructure. However at certain sintering temperatures and time, considerable grain growth and reduction of hardness value occurred, leading to the degradation of wear resistance. The results showed that at high alumina content, relative density of the composite increases. However, after raising the particle size of alumina, relative density initially increases and then drops to lower values. Increasing weight percent of alumina powder leads to higher hardness and consequently improves the wear resistance of A1-A1_2O_3 composite. The use of fine alumina particles has a similar effect on hardness and the wear resistance. Finally, a finer grain size was observed, at high amount and low size of the reinforcement particle.
机译:铝基复合材料是金属基复合材料的最常规类型之一。本文研究了生产参数对AI-AI_2O_3复合材料耐磨性的影响。使用粒径为12,3和48 n的氧化铝粉和粒径为30 n的纯铝粉。氧化铝粉末的添加量高达20%。利用球磨将粉末混合。烧结温度和时间范围分别为500、550和600℃,以及30、45、60和90分钟。已经发现,提高烧结温度导致密度,硬度和耐磨性的提高以及组织的均质化。然而,在一定的烧结温度和时间下,会出现明显的晶粒长大和硬度值降低,从而导致耐磨性下降。结果表明,在高氧化铝含量下,复合材料的相对密度增加。然而,在增加氧化铝的粒度之后,相对密度首先增加,然后下降至较低值。氧化铝粉末重量百分比的增加导致较高的硬度,因此改善了Al-Al_2O_3复合材料的耐磨性。氧化铝细颗粒的使用对硬度和耐磨性具有相似的影响。最后,在高含量和低尺寸的增强颗粒下观察到更细的晶粒尺寸。

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  • 来源
    《Materials & design》 |2011年第2期|p.1031-1038|共8页
  • 作者单位

    Faculty of Engineering, Islamic Azad University-Semnan Branch, Semnan, Iran;

    Faculty of Mining and Materials Engineering, Amirkabir University of Technology (AUT), Hafez Ave., Tehran, Iran;

    Faculty of Materials and Manufacturing Technology, Malek Ashtar University of Technology (MUT), Babayi Highway, Lavizan, Tehran, Iran;

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