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首页> 外文期刊>CERAMICS INTERNATIONAL >In-situ (Ti,Nb)C reinforced Ni-based coatings: New insights into microstructure evolution, enhanced phase configuration behavior and tribological properties
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In-situ (Ti,Nb)C reinforced Ni-based coatings: New insights into microstructure evolution, enhanced phase configuration behavior and tribological properties

机译:原位(TI,NB)C加固Ni的涂层:新的见解进入微观结构演化,增强的相位配置行为和摩擦学特性

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Multiple carbide reinforced metal matrix composite coating has been a promising material with superior abrasion resistance properties. Currently the improvement of the wear resistance of metal matrix composite coating mainly depends on the introduction of reinforcing phase at the expense of the inherent excellent ductility of metal matrix. Here, a new window to enhancing the wear resistance by adjusting the configuration of reinforcing phase space without sacrificing the inherent toughness of the matrix is introduced. Multiple (Ti,Nb)C/Ni-based hardfacing alloy coating prepared by plasma transferred arc technology has been investigated in this paper. Results showed that with the change of Ti/Nb atoms ratio, Cr-rich carbide has an obvious refinement behavior, which changes from a thick slat shape to a short bar with a smaller length-diameter ratio. It is observed that the microcracks are generated from coarse Cr-rich carbide under the action of applied stress and expand rapidly. Nevertheless, with the refinement evolution of Cr-rich carbide shape, only tiny micro-cracks exist in Cr-rich carbide. When Ti:Nb = 7:3, the improvement of wear resistance of the coating was mainly attributed to the reasonable spatial configuration distribution of the enhanced phase. When Ti:Nb = 3:7 and 0:10, the improvement of wear resistance of coating was mainly attributed to the improvement of microhardness brought by the increase of carbide precipitation content. By designing the internal correlation between the spatial configuration behavior of reinforcing phase and dry sliding wear test, the positive correlation between wear resistance and microhardness of materials was broken, which may provide a design window for improving wear resistance while maintaining good toughness of matrix.
机译:多碳化物增强金属基质复合涂层是具有优异耐磨性的有希望的材料。目前,金属基质复合涂层的耐磨性的提高主要取决于牺牲金属基质固有优异延展性的增强阶段的引入。这里,引入了通过调节增强相空间的配置而不牺牲基质的固有韧性来提高耐磨性的新窗口。本文研究了通过等离子体转移电弧技术制备的多种(Ti,Nb)C / Ni的硬币合金涂层。结果表明,随着Ti / Nb原子的比率的变化,Cr的碳化物具有明显的细化行为,其从厚的板条形状变为具有较小长度直径比的短条。观察到微裂纹在施加应力的作用下从富粗克富碳化物产生并迅速膨胀。然而,随着Cr富含Cr的碳化物形状的改进演变,Cr的碳化物中只存在微小的微裂纹。当Ti:Nb = 7:3时,涂层的耐磨性的提高主要归因于增强相的合理的空间配置分布。当Ti:Nb = 3:7和0:10时,涂层耐磨性的提高主要归因于通过碳化物沉淀含量的增加带来的显微硬度的改善。通过设计增强相和干滑动磨损试验的空间配置行为之间的内部相关性,物质的耐磨性和微硬度之间的正相关性被破坏,其可以提供用于改善耐磨性的设计窗口,同时保持基质的良好韧性。

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