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首页> 外文期刊>Surface & Coatings Technology >Microstructure and properties of mixed Cu-Sn and Fe-based alloys without or with molybdenum addition processed by plasma transferred arc
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Microstructure and properties of mixed Cu-Sn and Fe-based alloys without or with molybdenum addition processed by plasma transferred arc

机译:等离子转移弧处理不加钼或不加钼的Cu-Sn和Fe基混合合金的组织和性能

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In this study, two types of powders were processed by plasma transferred arc (PTA) to form coatings. In the first case. Cu-Sn powder and Fe-based powder were mixed at a weight ratio of 85:15 (Cu-Sn/Fe-based). In the second case, the Cu-Sn/Fe-based powder was blended with Mo powder at a weight ratio of 96:4 (Cu-Sn/Fe-based/Mo). Therefore, the weight ratio among Cu-Sn, Fe-based, and Mo powders was 81.6:14.4:4 in the second type powders. Liquid phase separation occurred in the Cu-Sn/Fe-based and Cu-Sn/Fe-based/Mo coatings. The Fe-rich spheroids comprised gamma(Fe, Ni) and M7C3 phases, as the precipitating alloy particles were distributed on the Cu-rich matrix that consisted of alpha(Cu, Sn) and Cu41Sn11 phases. The relative content of the Fe-rich spheroids in the Cu-Sn/Fe-based/Mo coating exceeded that in the Cu-Sn/Fe-based coating. The number of Fe-rich spheroids in the Cu-Sn/Fe-based coating increased far away from its substrate, and obvious macro-segregation could be seen close to its substrate. When Mo was further added, the numbers of Fe-rich spheroids were increased and obvious macro-segregation could not be easily found when compared to the Cu-Sn/Fe-based coating. The wear rate of the Cu-Sn/Fe-based and Cu-Sn/Fe-based/Mo coatings was lower than that of the Cu-Sn coating, and a distinct improvement on the wear rate could be obtained in the Cu-Su/Fe-based/Mo coating. The friction coefficient of the Cu-Sn/Fe-based/Mo coating exceeded that of the Cu-Sn coating but was lower than that of the Cu-Sn/Fe-based coating. The pitting corrosion resistance of the Cu-Sn/Fe-based and Cu-Sn/Fe-based/Mo coatings was higher than that of the Cu-Sn coating and the highest one could be obtained in the Cu-Sn/Fe-based/Mo coating. (C) 2015 Elsevier B.V. All rights reserved.
机译:在这项研究中,两种类型的粉末通过等离子转移弧(PTA)加工形成涂层。在第一种情况下。以85:15的重量比(Cu-Sn / Fe基)混合Cu-Sn粉末和Fe基粉末。在第二种情况下,将Cu-Sn / Fe基粉末与Mo粉末以96:4的重量比(Cu-Sn / Fe基/ Mo)混合。因此,在第二类型粉末中,Cu-Sn,Fe基和Mo粉末之间的重量比为81.6∶14.4∶4。在Cu-Sn / Fe基和Cu-Sn / Fe基/ Mo涂层中发生液相分离。富铁球体包含γ(Fe,Ni)和M7C3相,因为沉淀的合金颗粒分布在由α(Cu,Sn)和Cu41Sn11相组成的富铜基质上。 Cu-Sn / Fe基/ Mo涂层中富铁球体的相对含量超过Cu-Sn / Fe基涂层中的相对含量。 Cu-Sn / Fe基涂层中富铁球体的数量远离其基底而增加,并且在靠近基底的地方可以看到明显的宏观偏析。当进一步添加Mo时,与基于Cu-Sn / Fe的涂层相比,富铁球体的数量增加,并且不容易发现明显的宏观偏析。 Cu-Sn / Fe基涂层和Cu-Sn / Fe基/ Mo涂层的磨损率低于Cu-Sn涂层,并且在Cu-Su中可以获得明显的磨损率改善/ Fe基/ Mo涂层。 Cu-Sn / Fe基/ Mo涂层的摩擦系数超过了Cu-Sn涂层的摩擦系数,但低于Cu-Sn / Fe基涂层的摩擦系数。 Cu-Sn / Fe基和Cu-Sn / Fe基/ Mo涂层的耐点蚀性高于Cu-Sn涂层,在Cu-Sn / Fe基中可获得最高的耐点蚀性/ Mo涂层。 (C)2015 Elsevier B.V.保留所有权利。

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