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Super hard WC-Cr composite coatings: An approach to potential wear applications

机译:超硬WC-Cr复合涂层:潜在磨损应用的一种方法

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摘要

In this study, submicron (APS = 200 nm) tungsten carbide (WC) ceramic particles were co-deposited with chromium metal (Cr) via electro-co-deposition system to fabricate WC-Cr metal matrix composite coatings. Instead of traditional electrodeposition cells, a new system was designed and coatings were fabricated using this system. Phase identifications of the coatings were performed by X-ray diffractometry (XRD) and surface morphologies were investigated using energy dispersive X-ray spectroscopy (EDS) with attached scanning electron microscope (SEM). Hardness values of the coatings were performed under 980.7 mN applied load using a microhardness tester. It was concluded that WC ceramic particles were physically adsorbed on the cathode surface and formed a composite structure with metal Cr and co-deposition of submicron sized ceramic particles with metals via electrodeposition system was strictly successful. In addition, with respect to the reference coatings, WC reinforced composite coatings depict an increased hardness up to twice its value. Frequency, as a parameter of pulse current, is determined as an effective parameter in co-deposition.
机译:在这项研究中,通过电共沉积系统将亚微米(APS = 200 nm)碳化钨(WC)陶瓷颗粒与铬金属(Cr)共沉积,以制造WC-Cr金属基复合涂层。代替传统的电沉积电池,设计了一个新系统,并使用该系统制造了涂层。涂层的相鉴定是通过X射线衍射法(XRD)进行的,并使用带有扫描电镜(SEM)的能量色散X射线光谱仪(EDS)研究了表面形态。使用显微硬度测试仪在980.7 mN的施加负载下进行涂层的硬度值。结论是,WC陶瓷颗粒物理吸附在阴极表面并与金属Cr形成复合结构,通过电沉积系统成功沉积了亚微米级陶瓷颗粒与金属的共沉积。此外,相对于参考涂层,WC增强复合涂层的硬度增加了两倍。作为脉冲电流的参数,频率被确定为共沉积中的有效参数。

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