Tribology of nitrided-coated steel-a review

S. Bhaskar, H. Kudal
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引用次数: 11

Abstract

Abstract Surface engineering such as surface treatment, coating, and surface modification are employed to increase surface hardness, minimize adhesion, and hence, to reduce friction and improve resistance to wear. To have optimal tribological performance of Physical Vapor Deposition (PVD) hard coating to the substrate materials, pretreatment of the substrate materials is always advisable to avoid plastic deformation of the substrate, which may result in eventual coating failure. The surface treatment results in hardening of the substrate and increase in load support effect. Many approaches aim to improve the adhesion of the coatings onto the substrate and nitriding is the one of the best suitable options for the same. In addition to tribological properties, nitriding leads to improved corrosion resistance. Often corrosion resistance is better than that obtainable with other surface engineering processes such as hard-chrome and nickel plating. Ability of this layer to withstand thermal stresses gives stability which extends the surface life of tools and other components exposed to heat. Most importantly, the nitrogen picked-up by the diffusion layer increases the rotating-bending fatigue strength in components. The present article reviews mainly the tribological advancement of different nitrided-coated steels based on the types of coatings, structure, and the tribo-testing parameters, in recent years.
氮化涂层钢的摩擦学研究进展
表面工程,如表面处理、涂层和表面改性,用于提高表面硬度,减少附着力,从而减少摩擦,提高耐磨性。为了使物理气相沉积(Physical Vapor Deposition, PVD)硬质涂层对基体材料具有最佳的摩擦学性能,通常建议对基体材料进行预处理,以避免基体的塑性变形,从而导致涂层最终失效。表面处理导致基体硬化,载荷支撑效果增强。许多方法旨在提高涂层与基体的附着力,氮化是最合适的选择之一。除摩擦学性能外,氮化还可以提高耐腐蚀性。通常耐腐蚀性优于其他表面工程工艺,如镀硬铬和镀镍。该层承受热应力的能力提供了稳定性,从而延长了暴露在热下的工具和其他部件的表面寿命。最重要的是,扩散层吸收的氮增加了构件的旋转弯曲疲劳强度。本文主要从涂层类型、结构和摩擦试验参数等方面综述了近年来氮化涂层钢的摩擦学进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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