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Electrical discharge coating of nanostructured TiC-Fe cermets on 304 stainless steel

机译:304不锈钢上的纳米结构TiC-Fe金属陶瓷的放电涂层

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The electrical discharge coating (EDC) process, as used for the development of TiC-Fe cermet coatings on 304 stainless steel, has been investigated as a function of increasing current (2-19 A) and pulse-on time (2-64 mu s). Coating morphologies, comprising of a mixture of TiC, gamma-Fe, alpha-Fe and amorphous carbon, were characterised using the combined techniques of scanning electron microscopy (SEM), energy dispersive spectroscopy (EDS), X-ray diffractometry (XRD) and cross-sectional transmission electron microscopy (TEM). The developed coatings exhibited variable hardness values, up to an order of magnitude higher than that of the substrate, depending on the content and dispersion of nanostructured TiC particles within the Fe matrix. Coating hardness was found to increase with increasing current, but decrease under conditions of high pulse-on times, reflecting differences in the amount of TiC incorporated into the coatings. Optimised coatings were achieved using conditions of low processing energy which minimised the development of pores and cracks. (C) 2016 The Authors. Published by Elsevier B.V.
机译:已经研究了放电涂层(EDC)工艺,该工艺用于在304不锈钢上开发TiC-Fe金属陶瓷涂层,是随着电流(2-19 A)和脉冲接通时间(2-64 mu s)。使用扫描电子显微镜(SEM),能量色散谱(EDS),X射线衍射(XRD)和X射线相结合的技术对由TiC,γ-Fe,α-Fe和无定形碳的混合物组成的涂层形貌进行表征截面透射电子显微镜(TEM)。所开发的涂层表现出可变的硬度值,其硬度最高比基底的硬度值高一个数量级,这取决于纳米结构化的TiC颗粒在铁基体中的含量和分散性。发现涂层硬度随电流的增加而增加,但在高脉冲接通时间的条件下降低,反映了掺入涂层的TiC量的差异。使用低加工能量的条件获得了最佳的涂层,从而最大程度地减少了气孔和裂纹的产生。 (C)2016作者。由Elsevier B.V.发布

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