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首页> 外文期刊>Materials & design >Investigation of microstructure, hardness and wear properties of Al-4.5 wt.% Cu-TiC nanocomposites produced by mechanical milling
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Investigation of microstructure, hardness and wear properties of Al-4.5 wt.% Cu-TiC nanocomposites produced by mechanical milling

机译:机械研磨制得的Al-4.5 wt。%Cu-TiC纳米复合材料的微观结构,硬度和磨损性能的研究

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摘要

The present work deals with studies on the manufacturing and investigation of mechanical and wear behavior of aluminum alloy matrix composites (AAMCs), produced using powder metallurgy technique of ball milled mixing in a high energy attritor and using a blend-press-sinter methodology. Matrix of pre-mechanical alloyed Al-4.5 wt.% Cu was used to which different fractions of nano and micron size TiC reinforcing particles (ranging from 0 to 10 wt.%) were added. The powders were mixed using a planetary ball mill. Consolidation was conducted by uniaxial pressing at 650 MPa. Sintering procedure was done at 400 ℃ for 90 min. The results indicated that as TiC particle size is reduced to nanometre scale and the TiC content is increased up to optimum levels, the hardness and wear resistance of the composite increase significantly, whereas relative density, grain size and distribution homogeneity decrease. Using micron size reinforcing particulates from 5% to 10 wt.%, results in a significant hardness reduction of the composite from 174 to 98 HVN. Microstructural characterization of the as-pressed samples revealed reasonably uniform distribution of TiC reinforcing particulates and presence of minimal porosity. The wear test disclosed that the wear resistance of all specimens increases with the addition of nano and micron size TiC particles (up to 5 wt.%). Scanning electron microscopic observation of the worn surfaces was conducted and the dominant wear mechanism was recognized as abrasive wear accompanied by some delamination wear mechanism.
机译:本工作涉及铝合金基复合材料(AAMC)的制造和力学性能研究,研究是通过在高能磨机中采用球磨混合的粉末冶金技术并采用混合压烧结法进行的。使用机械前合金化的Al-4.5 wt%Cu的基质,向其中添加了不同比例的纳米和微米级TiC增强颗粒(范围为0至10 wt。%)。使用行星式球磨机将粉末混合。通过在650MPa下单轴加压进行固结。烧结过程在400℃下进行90分钟。结果表明,随着TiC粒径减小至纳米级,且TiC含量增加至最佳水平,复合材料的硬度和耐磨性显着提高,而相对密度,晶粒尺寸和分布均匀性降低。使用从5%到10 wt。%的微米尺寸的增强颗粒,会使复合材料的硬度从174 HVN显着降低到98 HVN。压制样品的微观结构表征表明,TiC增强颗粒分布合理合理,并且孔隙率极低。磨损测试表明,所有样品的耐磨性都随着纳米和微米尺寸的TiC颗粒(最高5 wt。%)的添加而增加。进行了磨损表面的扫描电子显微镜观察,并且主要的磨损机理被认为是伴随有一些分层磨损机理的磨料磨损。

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  • 来源
    《Materials & design》 |2011年第7期|p.3718-3729|共12页
  • 作者单位

    Materials Engineering Department ofSahand University of Technology (SUT), Tabriz, Iran;

    Materials Engineering Department ofSahand University of Technology (SUT), Tabriz, Iran;

    Center of Excellence for High Performance Materials, School of Metallurgy and Materials, University of Tehran, Tehran, Iran;

    Faculty of Mechanical Engineering, K.N. Toosi University of Technology, Tehran, Iran;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    A. Metal matrix composite; C. Mechanical alloying; E. Wear;

    机译:A.金属基复合材料;机械合金化;E.穿;

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