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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Laser synthesis and microstructure of micro- and nano-structured WC reinforced Co-based cladding layers on titanium alloy
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Laser synthesis and microstructure of micro- and nano-structured WC reinforced Co-based cladding layers on titanium alloy

机译:钛合金上微型和纳米结构WC增强Co基覆层层的激光合成和微观结构

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Micro- and nano-structured WC reinforced Co-based cladding layers on Ti-6Al-4V substrates were synthesized by laser cladding. The structure, phase composition, and wear behavior were investigated by scanning electron microscopy (SEM), X-ray diffraction (XRD), and friction-wear tests. High-angle annular dark field-energy dispersive spectroscopy (HAADF-EDS), transmission electron microscopy (TEM) and lattice images confirmed the XRD and SEM results. The interfaces exhibited good metallurgical bonding between the cladding layer and substrate owing to their high chemical affinity for each other. The cladding layer was composed of alpha(alpha')-titanium, eutectics of CoTi2, beta-titanium, TiC, eutectics of TiC-TiB2, VC (Cr3C2), (Ti, W)C1-x, W, TiB2, and Co3W3C phases formed by the dissolution of WC. VC inhibited grain growth more effectively than Cr3C2 or the combined effects of VC and Cr3C2. The wear resistance of the micro-/nano-WC cladding layers was markedly improved compared with those of Ti-6Al-4V. Nano-WC tended to convert into tungsten, however, the cladding layers easily became hard and brittle owing to aggregates of carbides or oxides. This effect resulted from interfacial boundaries formed by major differences at the alpha-Ti/alpha-Ti (Cr3C2, TiB2) interfaces in terms of the chemical and structural contributions to the surface energy. (C) 2018 Elsevier B.V. All rights reserved.
机译:通过激光包层合成Ti-6Al-4V基板上的微型和纳米结构WC增强的基于基于基于基于基于TI-6A-4V基底的覆层。通过扫描电子显微镜(SEM),X射线衍射(XRD)和摩擦磨损试验来研究结构,相组合物和磨损行为。大角度环形暗场 - 能量分散光谱(HAADF-EDS),透射电子显微镜(TEM)和晶格图像证实了XRD和SEM结果。由于它们彼此高的化学亲和力,界面在包层和基材之间表现出良好的冶金键合。包层层由α(α') - 钛,Coti2,β-钛,TiC,TiC-Tib2,Vc(CR3C2),(Ti,W)C1-X,W,TIB2和CO3W3C的共肠通过Wc溶解形成的相。 VC比CR3C2更有效地抑制晶粒生长或VC和CR3C2的组合效果。与Ti-6Al-4V相比,微/纳米WC包层层的耐磨性显着改善。纳米WC倾向于转化为钨,然而,由于碳化物或氧化物的聚集体,包层层很容易变得难以变脆。这种效果由α-Ti /α-Ti(CR3C2,TIB2)接口在化学和结构贡献方面的主要差异形成的界面边界。 (c)2018年elestvier b.v.保留所有权利。

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