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    龚建勋, 许继青, 路德斌, 吴慧剑. TiC颗粒对铁-碳-铬-硅合金堆焊层显微组织及耐磨性的影响[J]. 机械工程材料, 2015, 39(4): 43-47.
    引用本文: 龚建勋, 许继青, 路德斌, 吴慧剑. TiC颗粒对铁-碳-铬-硅合金堆焊层显微组织及耐磨性的影响[J]. 机械工程材料, 2015, 39(4): 43-47.
    GONG Jian-xun, XU Ji-qing, LU De-bin, WU Hui-jian. Effects of TiC Particles on Microstructure and Abrasion Resistance of Fe-C-Cr-Si Alloy Hardfacing Layers[J]. Materials and Mechanical Engineering, 2015, 39(4): 43-47.
    Citation: GONG Jian-xun, XU Ji-qing, LU De-bin, WU Hui-jian. Effects of TiC Particles on Microstructure and Abrasion Resistance of Fe-C-Cr-Si Alloy Hardfacing Layers[J]. Materials and Mechanical Engineering, 2015, 39(4): 43-47.

    TiC颗粒对铁-碳-铬-硅合金堆焊层显微组织及耐磨性的影响

    Effects of TiC Particles on Microstructure and Abrasion Resistance of Fe-C-Cr-Si Alloy Hardfacing Layers

    • 摘要: 用埋弧焊制备铁-碳-铬-硅合金堆焊层, 通过显微组织观察、硬度测试和耐磨性能试验等方法研究了外加TiC颗粒含量对其显微组织及耐磨性的影响。结果表明: 不同TiC含量的铁-碳-铬-硅合金堆焊层基体组织均为α-Fe, 随TiC含量增加, 初生M7C3颗粒尺寸从40~80 μm逐渐减小至15~25 μm, 颗粒数量增多, 分布弥散, 且出现了TiC2和TiC等增强相; 弥散密集分布的M7C3颗粒有利于堆焊合金层表面均匀磨损, 避免因粗大脆性共晶优先磨损引起的过早失效, 显著改善了耐磨性; 该合金堆焊层的耐磨性随TiC含量的增加先增强, 接着减弱, 然后再增强, 其主要磨损机理由微观断裂转变为微切削。

       

      Abstract: Fe-C-Cr-Si hardfacing alloy layers were deposited by the method of submerged arc welding. The effects of TiC particles on the microstructure and abrasion resistance of the hardfacing alloy layers were researched by microstructure observation, hardness measurement and abrasion wear testing. The results show that the matrix of hardfacing alloy layers were all α-Fe; when TiC content increased, primary M7C3 grains gradually reduced in size from 40-80 μm to 15-25 μm and distributed more dispersively with their amount increasing, and the reinforce phases such as TiC2 and TiC were observed. Dispersively and close distributed M7C3 particles were favorable for uniformly wearing on the hardfacing alloy layer surface, refrained from premature failure because of priority wearing of the brittle eutectic with larger size and improved its abrasion resistance. The abrasion resistance of the hardfacing alloy layers first increased, then decreased and increased again with the increase of TiC content, and the dominating wear mechanism changed from micro-cracking to micro-cutting.

       

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