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Effects of the dispersion time on the microstructure and wear resistance of WC/Co-CNTs HVOF sprayed coatings

机译:分散时间对WC / Co-CNTs HVOF喷涂涂层的组织和耐磨性的影响

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WC–Co is widely used as a tribological coating material providing a combination of high toughness, high hardness, and good strength. Herein, an attempt has been made to further enhance the mechanical and wear properties of tungsten carbide cobalt coatings by reinforcing them with multiwall carbon nanotubes (CNTs) using thermal spraying. In this work, 0.35 wt.% of CNTs were mixed by jar-milling in ethanol solution with WC–12%Co microcrystalline powders for different blending times. The mixture was thermally sprayed using the HVOF process onto a plain steel substrate. Also, coatings deposited with both WC-12%Co microcrystalline and nanostructured powders, using the same thermal spray process,were evaluated and compared with samples reinforced with CNTs. The microstructures of the coatings were characterized using scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (EDS), Raman spectroscopy and X-ray diffraction (XRD). The microhardness wasmeasured by Vickers indentation and the abrasivewear resistance was evaluated using a dry sand rubber wheel technique according to ASTM G-65-00 standard. Effects of blending times of CNTs on the microstructure, abrasion wear and microhardness of the coatings were investigated. Experimental results have shown that 36 h of milling time was suitable to disperse CNTs with WC–Co feed powders since it produces an adequate relationship between CNTs' dispersion time and particle size which enhances the microhardness and porosity of the coatings. The C-36 coating showed an increase inwear resistance of almost 80% and 70% compared with conventional and nanostructured coatings, respectively. This was attributed to the CNTs acting as bridges, promoting the cohesion between lamellas and reducing the decarburization. All reinforced coatings showed a higher abrasivewear resistance than non-reinforced indicating that CNTs are a good alternative to improve abrasion wear resistance of WC–Co coatings.
机译:WC-Co被广泛用作摩擦涂层材料,兼具高韧性,高硬度和良好的强度。本文中,已经尝试通过使用热喷涂用多壁碳纳米管(CNT)增强碳化钨钴涂层来进一步增强其机械性能和磨损性能。在这项工作中,在乙醇溶液中用WC-12%Co微晶粉末在乙醇溶液中通过罐磨将0.35 wt。%的CNT混合了不同的混合时间。使用HVOF工艺将混合物热喷涂到普通钢基材上。此外,还评估了使用相同的热喷涂工艺沉积了WC-12%Co微晶粉末和纳米结构粉末的涂层,并将其与用CNT增强的样品进行了比较。使用扫描电子显微镜(SEM),能量色散X射线光谱(EDS),拉曼光谱和X射线衍射(XRD)对涂层的微观结构进行表征。通过维氏压痕法测量显微硬度,并根据ASTM G-65-00标准,使用干砂橡胶轮技术评估耐磨性。研究了碳纳米管共混时间对涂层组织,耐磨性和显微硬度的影响。实验结果表明,铣削时间为36 h适于用WC-Co进料粉末分散CNT,因为它在CNT的分散时间和粒径之间产生了适当的关系,从而提高了涂层的显微硬度和孔隙率。与常规涂层和纳米结构涂层相比,C-36涂层的耐磨性分别提高了近80%和70%。这归因于碳纳米管充当桥梁,促进了薄片之间的凝聚力并减少了脱碳。所有增强涂层均显示出比非增强涂层更高的耐磨性,这表明CNT是改善WC-Co涂层耐磨性的良好替代品。

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