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首页> 外文期刊>Surface & Coatings Technology >Titanium carbide coating with enhanced tribological properties obtained by EDC using partially sintered titanium electrodes and graphite powder mixed dielectric
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Titanium carbide coating with enhanced tribological properties obtained by EDC using partially sintered titanium electrodes and graphite powder mixed dielectric

机译:使用部分烧结的钛电极和石墨粉混合电介质通过EDC获得的具有增强摩擦学性能的碳化钛涂层

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摘要

The combination of partially sintered titanium tool electrode and graphite powder mixed dielectric is proposed to prepare titanium carbide coatings by electrical discharge coating technique with the major objective to improve their tribological properties. The phase composition and microstructure of the obtained coatings are characterized by X-ray diffraction, Raman spectrum, transmission electron microscopy and scanning electron microscopy. Their tribological performances are investigated by ball-on-disk tribometer and the corresponding mechanism of friction and wear is explored. Compared with the coatings obtained in dielectric without graphite powder, they show more uniform thickness and higher microhardness. They also show lower and steadier friction coefficient as well as better wear resistance especially in high load condition. These enhanced properties can be attributed to the suspended graphite powders in dielectric. They, as the additional carbon source, increase the transition of titanium tool electrode to titanium carbide and introduce amorphous carbon into the coatings. It is this amorphous carbon that continuously supplies the lubricant at the contact, helping to accommodate sliding motion and preventing the surfaces from mechanical wear and oxidation. (C) 2016 Elsevier B.V. All rights reserved.
机译:提出了部分烧结的钛工具电极与石墨粉混合电介质的结合,通过放电涂覆技术制备碳化钛涂层,其主要目的是提高其摩擦学性能。通过X射线衍射,拉曼光谱,透射电子显微镜和扫描电子显微镜对所得涂层的相组成和显微结构进行表征。用圆盘摩擦计研究了它们的摩擦性能,并探讨了相应的摩擦磨损机理。与没有石墨粉的电介质中获得的涂层相比,它们具有更均匀的厚度和更高的显微硬度。它们还显示出较低且稳定的摩擦系数,以及更好的耐磨性,尤其是在高负载条件下。这些增强的性能可归因于电介质中的悬浮石墨粉。它们作为额外的碳源,增加了钛工具电极向碳化钛的过渡,并将无定形碳引入涂层中。正是这种无定形碳在触点处连续提供润滑剂,有助于适应滑动运动并防止表面机械磨损和氧化。 (C)2016 Elsevier B.V.保留所有权利。

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