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Development of hybrid Mg/Al2O3 composites with improved properties using microwave assisted rapid sintering route

机译:微波辅助快速烧结法制备性能改进的Mg / Al2 O3 杂化复合材料

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摘要

In the present study, hybrid magnesium based composites reinforced with an equivalent of 5 vol.% of micron and nano-sized Al2O3 particulates were synthesized using powder metallurgy technique incorporating an innovative microwave assisted rapid sintering technique. Microstructural characterization revealed near equiaxed grain morphology and the presence of minimal porosity in all the samples. Mechanical characterization studies revealed that the coupled addition of micron and nano-sized particulate reinforcements in magnesium matrix leads to a significant increase in hardness, elastic modulus, 0.2% yield strength, ultimate tensile strength and a decrease in ductility when compared to pure magnesium. Tensile testing results further revealed an increase in elastic modulus and ductility with no apparent change in the 0.2% yield strength and ultimate tensile strength of the hybrid composites upon the addition of nano-sized alumina particulates from 0.5 to 0.75 volume percent. With an increase in nano-sized alumina particulates from 0.75 to 1%, the overall mechanical properties of the hybrid composites were enhanced with an increase being observed in the elastic modulus, 0.2% yield strength and ductility of the composites. An attempt is made in this study to investigate the feasibility of the processing methodology and to study the effects of the addition of particulate reinforcements of different sizes on the microstructure, physical and mechanical properties of magnesium.
机译:在本研究中,采用粉末冶金技术并结合了创新的微波辅助快速烧结技术,合成了杂化镁基复合材料,该复合材料增强了5%(体积)的微米级纳米Al2 O3 颗粒。显微组织表征揭示了几乎等轴晶形态,并且在所有样品中都存在最小孔隙率。机械特征研究表明,与纯镁相比,在镁基体中偶合添加微米级和纳米级颗粒增强剂会导致硬度,弹性模量,0.2%屈服强度,极限抗拉强度和延展性显着提高。拉伸试验结果进一步表明,当添加0.5-0.75体积%的纳米尺寸的氧化铝颗粒时,杂化复合材料的0.2%屈服强度和极限拉伸强度没有明显变化,弹性模量和延展性增加。随着纳米级氧化铝颗粒从0.75%增加到1%,杂化复合材料的整体机械性能得到增强,复合材料的弹性模量,0.2%屈服强度和延展性得到提高。这项研究试图研究加工方法的可行性,并研究添加不同尺寸的颗粒增强剂对镁的微观结构,物理和机械性能的影响。

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  • 来源
    《Journal of Materials Science 》 |2005年第13期| 3395-3402| 共8页
  • 作者单位

    Department of Mechanical Engineering National University of Singapore;

    Department of Mechanical Engineering National University of Singapore;

    Department of Mechanical Engineering National University of Singapore;

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  • 正文语种 eng
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