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首页> 外文期刊>Journal of Materials Science >Microstructure of laser melted/rapidly solidified γ/Cr3Si metal silicide “in situ” composites
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Microstructure of laser melted/rapidly solidified γ/Cr3Si metal silicide “in situ” composites

机译:激光熔融/快速凝固γ/ Cr3 Si金属硅化物“原位”复合材料的微观结构

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In order to improve the ductility of Cr3Si metal silicide alloys, rapidly solidified γ/Cr3Si metal silicide “in situ” composites were fabricated by laser melting/rapid solidification technology using Cr-Si-Ni alloy powders. Microstructure of the γ/Cr3Si “in situ” composites was characterized by OM, SEM, XRD and EDS. The effect of Ni content in the alloy powder on microstructure and hardness of the γ/Cr3Si composites was investigated. The γ/Cr3Si metal silicide “in situ” composites have high hardness and rapidly solidified fine microstructure consisting of primary Cr3Si dendrites and the interdendritic γ/Cr3Si eutectics. The volume fraction of the Cr3Si primary dendrites in the laser melted/rapidly solidified γ/Cr3Si metal silicide “in situ” composites decreases with the increasing nickel content. Because of the presence of the ductile nickel-base solid solution and the rapidly solidified fine microstructure, the γ/Cr3Si metal silicide “in situ” composites are expected to have adequate combination of strength and toughness. The results demonstrate that laser melting/rapid solidification for γ/Cr3Si metal silicide “in situ” composites is a promising toughening method for improving the ductility of Cr3Si metal silicide alloys.
机译:为了提高Cr3 Si金属硅化物合金的延展性,采用Cr-Si-Ni合金通过激光熔融/快速凝固技术制备了快速凝固的γ/ Cr3 Si金属硅化物“原位”复合材料。粉末。利用OM,SEM,XRD和EDS对γ/ Cr3 Si“原位”复合材料的微观结构进行了表征。研究了合金粉中镍含量对γ/ Cr3 Si复合材料组织和硬度的影响。 γ/ Cr3 Si金属硅化物“原位”复合材料具有较高的硬度,并具有快速凝固的精细微观结构,该微观结构由一次Cr3 Si树枝晶和枝晶间γ/ Cr3 Si共晶组成。随着镍含量的增加,激光熔融/快速凝固的γ/ Cr3 Si金属硅化物原位复合材料中Cr3 Si初生树枝晶的体积分数减小。由于存在易延展的镍基固溶体和快速凝固的细微结构,因此“原位”复合材料γ/ Cr3 Si金属硅化物有望具有足够的强度和韧性组合。结果表明,γ/ Cr3 Si金属硅化物“原位”复合材料的激光熔融/快速凝固是一种改善Cr3 Si金属硅化物合金延展性的有前途的增韧方法。

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  • 来源
    《Journal of Materials Science 》 |2002年第10期| 1981-1985| 共5页
  • 作者

    G. Duan; H. M. Wang;

  • 作者单位

    Laboratory of Laser Materials Processing and Surface Engineering School of Materials Science and Engineering Beijing University of Aeronautics and Astronautics;

    Laboratory of Laser Materials Processing and Surface Engineering School of Materials Science and Engineering Beijing University of Aeronautics and Astronautics;

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