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    聂智超, 严仰先, 洪嘉婷, 廖航宇, 宋文龙, 邹金明, 张雪辉. Ti2AlC粉末粒径分布对TiC0.5-Al2O3/Cu复合材料组织及性能的影响[J]. 机械工程材料, 2023, 47(3): 66-71. DOI: DOI: 10.11973/jxgccl202303012
    引用本文: 聂智超, 严仰先, 洪嘉婷, 廖航宇, 宋文龙, 邹金明, 张雪辉. Ti2AlC粉末粒径分布对TiC0.5-Al2O3/Cu复合材料组织及性能的影响[J]. 机械工程材料, 2023, 47(3): 66-71. DOI: DOI: 10.11973/jxgccl202303012
    NIE Zhichao, YAN Yangxian, HONG Jiating, LIAO Hangyu, SONG Wenlong, ZOU Jinming, ZHANG Xuehui. Effect of Ti2AlC Particle Size Distribution on Microstructure and Properties of TiC0.5-Al2O3/Cu Composites[J]. Materials and Mechanical Engineering, 2023, 47(3): 66-71. DOI: DOI: 10.11973/jxgccl202303012
    Citation: NIE Zhichao, YAN Yangxian, HONG Jiating, LIAO Hangyu, SONG Wenlong, ZOU Jinming, ZHANG Xuehui. Effect of Ti2AlC Particle Size Distribution on Microstructure and Properties of TiC0.5-Al2O3/Cu Composites[J]. Materials and Mechanical Engineering, 2023, 47(3): 66-71. DOI: DOI: 10.11973/jxgccl202303012

    Ti2AlC粉末粒径分布对TiC0.5-Al2O3/Cu复合材料组织及性能的影响

    Effect of Ti2AlC Particle Size Distribution on Microstructure and Properties of TiC0.5-Al2O3/Cu Composites

    • 摘要: 通过不同时间的湿法球磨得到不同粒径分布的Ti2AlC粉末,再与Cu2O粉末和铜粉末混合,利用放电等离子烧结技术制备TiC0.5-Al2O3/Cu复合材料,研究了Ti2AlC粉末粒径分布对其组织和性能的影响。结果表明:随着Ti2AlC粉末中亚微米级颗粒体积分数由0增加到70.27%,复合材料中增强相颗粒TiC0.5和Al2O3在基体中分散更均匀,但是当亚微米级颗粒体积分数为98.07%时,增强相颗粒出现聚集现象;随着亚微米级颗粒体积分数的增加,复合材料的导电率与相对密度先减小后增大,硬度与屈服强度则先升后降,当亚微米级颗粒体积分数为70.27%时,复合材料综合性能最优异。

       

      Abstract: Ti2AlC powder with different particle size distribution was obtained by wet ball milling for different times, and then mixed with Cu2O powder and copper powder to prepare TiC0.5-Al2O3/Cu composite by discharge plasma sintering. The effect of particle size distribution of the Ti2AlC powder on microstructure and properties of composites was studied. The results show that when the submicron particle volume fraction of the Ti2AlC powder increased from 0 to 70.27%, the reinforcement particles TiC0.5 and Al2O3 dispersed in the matrix more evenly; when the volume fraction of submicron particles was 98.07%, the reinforcement particles aggregated. With increasing the submicron particle volume fraction, the conductivity and relative density of the composites decreased first and then increased, while the hardness and yield strength increased first and then decreased.When the submicron particle volume fraction reached 70.27%, the composite had the best comprehensive performance.

       

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