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Development of an Iron-Based Hardfacing Material Reinforced with Fe-(TiW)C Composite Powder

机译:Fe-(TiW)C复合粉增强铁基堆焊材料的研制

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The objective of this work is to investigate the correlation of microstructure with wear resistance in a hardfacing material reinforced with Fe-(TiW)C composite powder particles. This material was designed for cladding components subjected to highly abrasive conditions and was deposited on a low-carbon steel substrate by open arc welding. The theoretical and experimental work undertaken includes solidification study, microstructural characterization, and abrasive wear testing. Microstructural analysis of the hardfaced top layer of the alloy showed the presence of TiWC carbide particles and TiNbC carbides randomly distributed in a eutectic mixture matrix γ/M7C3 containing primary austenite dendrites. Microstructural examinations also showed that hard and fine spherulitic carbides, in which a Ti-rich MC carbide core was encircled by MC carbide enriched with Nb and W, were homogeneously distributed in the matrix. The energy-dispersive spectroscopy (EDS) mapping of spherulitic carbides showed that the any added Nb replaced a significant part of W in the Fe-(TiW)C powder, and W preferentially partitioned into other carbides and matrix during solidification. Abrasion test results showed that the preceding carbides improve the wear resistance of the hardfacing material in comparison with conventional Fe-Cr-C and Fe-Cr-C-Nb alloys, especially under high stress conditions.
机译:这项工作的目的是研究用Fe-(TiW)C复合粉末颗粒增强的堆焊材料的微观结构与耐磨性的相关性。该材料被设计为用于经受高磨蚀条件的覆层部件,并通过明弧焊沉积在低碳钢基材上。进行的理论和实验工作包括凝固研究,微观结构表征和磨料磨损测试。合金表面硬质合金的显微组织分析表明,TiWC碳化物颗粒和TiNbC碳化物随机分布在含有一次奥氏体枝晶的共晶混合物基体γ/ M7 C3 中。显微组织检查还表明,硬和细的球状碳化物均匀分布在基体中,富钛的MC碳化物核被富含Nb和W的MC碳化物包围。球形碳化物的能谱分析表明,添加的Nb替代了Fe-(TiW)C粉末中W的大部分,并且在凝固过程中W优先分配给其他碳化物和基体。磨损试验结果表明,与传统的Fe-Cr-C和Fe-Cr-C-Nb合金相比,上述碳化物改善了堆焊材料的耐磨性,尤其是在高应力条件下。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2007年第5期|937-945|共9页
  • 作者单位

    Department of Materials Science and Metallurgy University of Cambridge is with the Universidade Federal de Itajubá Minas Gerais Brazil;

    Universidade Federal de São Carlos São Paulo Brazil;

    Welding Alloys Ltd. Fowlmere Royston Herts United Kingdom;

    Department of Materials Science and Metallurgy University of Cambridge Cambridge United Kingdom;

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