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Review of engineered tribological interfaces for improved boundary lubrication

机译:审查工程化的摩擦学界面以改善边界润滑

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Recent advances in smart surface engineering and coating technologies offer unique possibilities for better controlling friction and wear under boundary or marginally lubricated rolling, sliding or rotating contact conditions. Specifically, such coatings can be tailored to meet the increasingly multi-functional application needs of future engine systems by enabling them to operate in lower viscosity oils with reduced sulfur and phosphorous. Using these technologies, researchers have already pioneered the development of a variety of nano-composite and super-hard coatings providing longer tool life in demanding machining and manufacturing applications. The same technologies can also be used in the design and development of novel coating architectures providing lower friction and wear under boundary-lubricated sliding conditions. For example, such coatings can be tailored in a very special way that while one of the phases can favorably react with certain additives in engine oils to result in an ideal chemical boundary film; the other phases can provide super-hardness and hence resists wear and scuffing. Because of their very dense microstructure and high chemical inertness, these coatings can also provide superior protection against oxidation and corrosive attacks in aggressive environments. The use of solid lubricant coatings may also improve the tribological properties of sliding contact interfaces under boundary lubricated sliding conditions. When fluid and boundary films fails or is broken down, such coatings can carry the load and act as a back-up lubricant. Other smart surface technologies such as laser texturing and/or dimpling, laser-glazing and -shotpeening have also become very popular in recent years. In particular, laser texturing of control or coated surfaces have opened up new possibilities for further manipulation of the lubrication regimes in classical Stribeck diagrams. Controlling dimple size, shape, orientation, and density, researchers were able to modify both the width and the height of the boundary lubrication regimes and thus achieve lower friction and wear at sliding and rotating contact interfaces. Overall, smart surface engineering and coating technologies have matured over the years and they now become an integral part of advanced machining and manufacturing applications. They can also be used to meet the increasingly stringent and multi-functional application needs of demanding tribological applications. In this paper, selected examples of recently developed novel surface engineering and coating technologies are introduced, and the fundamental tribological mechanisms that control their friction and wear behavior under boundary lubrication regimes are presented.
机译:智能表面工程和涂层技术的最新进展为在边界或略微润滑的滚动,滑动或旋转接触条件下更好地控制摩擦和磨损提供了独特的可能性。具体而言,可以对此类涂料进行定制,使其能够在具有降低的硫和磷的较低粘度油中运行,从而满足未来发动机系统日益增长的多功能应用需求。使用这些技术,研究人员已经率先开发出各种纳米复合材料和超硬涂层,从而在要求苛刻的加工和制造应用中提供更长的刀具寿命。同样的技术也可以用于新型涂层结构的设计和开发中,从而在边界润滑的滑动条件下提供较低的摩擦和磨损。例如,可以以非常特殊的方式定制此类涂料,以使其中一个相可以与机油中的某些添加剂有利地反应,从而形成理想的化学边界膜;其他相可提供超硬性,因此可抵抗磨损和划伤。由于其非常致密的微观结构和高度的化学惰性,这些涂料还可在侵蚀性环境中提供出色的抗氧化和抗腐蚀保护。在边界润滑的滑动条件下,使用固体润滑剂涂层还可以改善滑动接触界面的摩擦学性能。当流体膜和边界膜失效或破裂时,此类涂层会承受载荷并充当备用润滑剂。近年来,其他智能表面技术,例如激光纹理化和/或凹坑化,激光玻璃化和喷丸硬化也变得非常流行。特别地,控制面或涂层表面的激光纹理化为进一步操纵经典Stribeck图中的润滑方式开辟了新的可能性。控制酒窝的大小,形状,方向和密度,研究人员能够修改边界润滑方式的宽度和高度,从而在滑动和旋转接触界面处获得较低的摩擦和磨损。总体而言,智能表面工程和涂层技术已经发展了许多年,现在已成为高级机加工和制造应用中不可或缺的一部分。它们还可用于满足苛刻的摩擦学应用日益严格的多功能应用需求。在本文中,介绍了最近开发的新颖表面工程和涂层技术的部分示例,并介绍了在边界润滑条件下控制摩擦和磨损行为的基本摩擦学机理。

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