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    邱俊波, 王泽华, 周泽华, 易于, 江少群. 等离子熔覆镍铬碳合金层的显微组织和硬度[J]. 机械工程材料, 2011, 35(4): 83-86.
    引用本文: 邱俊波, 王泽华, 周泽华, 易于, 江少群. 等离子熔覆镍铬碳合金层的显微组织和硬度[J]. 机械工程材料, 2011, 35(4): 83-86.
    QIU Jun-bo, WANG Ze-hua, ZHOU Ze-hua, YI Yu, JIANG Shao-qun. Microstructure and Hardness of Plasma Cladding Ni-Cr-C Alloy Coating[J]. Materials and Mechanical Engineering, 2011, 35(4): 83-86.
    Citation: QIU Jun-bo, WANG Ze-hua, ZHOU Ze-hua, YI Yu, JIANG Shao-qun. Microstructure and Hardness of Plasma Cladding Ni-Cr-C Alloy Coating[J]. Materials and Mechanical Engineering, 2011, 35(4): 83-86.

    等离子熔覆镍铬碳合金层的显微组织和硬度

    Microstructure and Hardness of Plasma Cladding Ni-Cr-C Alloy Coating

    • 摘要: 采用等离子熔覆技术在挖泥船耙齿材料低碳马氏体铸钢表面制备了镍铬碳合金层, 借助OM、SEM、EDS、XRD和显微硬度计等对熔覆层的显微组织、化学成分和显微硬度等进行了分析。结果表明: 熔覆层与基体形成了冶金结合, 主要由γ-Fe+(Cr,Fe)7C3共晶相和初生板条或块状硬质耐磨相(Cr,Fe)7C3组成; 当熔覆电流为100 A、扫描速度为150 mm·min-1时, 熔覆层的组织最致密, 显微硬度高达1 053 HV。

       

      Abstract: Ni-Cr-C alloy coating was prepared by plasma cladding technique on the surface of scoop tooth of dredger material low carbon martensite cast steel. The microstructure, chemical composition and micro-hardness of the cladding coating were investigated with OM, SEM, EDS, XRD and micro-hardness tester. The results show that the coating had metallurgy combination with the matrix, which was composed of eutectic γ-Fe/(Cr,Fe)7C3 and primary hard wear resistant phase (Cr,Fe)7C3 with the forms of lath or block. The densest coating was obtained with the cladding current of 100 A and the scanning velocity of 150 mm·min-1, and the micro-hardness reached up to 1 053 HV.

       

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