首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Physical characterization and wear behavior of laser processed and PVD coated WC/Co in dry sliding and dry turning processes
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Physical characterization and wear behavior of laser processed and PVD coated WC/Co in dry sliding and dry turning processes

机译:干式滑动和干式转动过程中激光加工和PVD涂层WC / CO的物理特征及磨损行为

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摘要

The present study is an attempt to integrate the laser surface modification techniques with PVD-coatings. AlTiN and AlCrN coatings were deposited on different laser shock peened (LSP) and laser surface textured (LST) WC/Co surfaces. The developed surfaces and PVD coatings were characterized for surface morphology, elemental composition, surface topography, substrate/coating phases, and adhesion behavior. Tribological tests were performed to understand the friction and wear performance of developed surfaces against Ti6Al4V counter pair at varying sliding speeds. Tribo test results revealed that the coatings deposited on laser processed surfaces are helpful in reducing the coefficient of friction (COF) and wear loss. The associated wear mechanisms are discussed with the help of proposed wear models. For laser textured surfaces, the experimental evidence of texture induced micro cutting mechanism has been reported. The generation of weaker carbides for LSP surfaces reduced the coating adhesion and resulted in poor tribological performance. For machining of Ti6Al4V, improved performance of coated LST surfaces was achieved. Apparent friction coefficient and flank wear were reduced by 64% and 65% respectively.
机译:本研究试图将激光表面改性技术与PVD涂层集成。 Altin和Alcrn涂料沉积在不同的激光冲击喷丸(LSP)和激光表面纹理(LST)WC / CO表面上。开发的表面和PVD涂层的特征在于表面形态,元素组成,表面形貌,底物/涂层相和粘附性能。进行摩擦学检验以了解在不同滑动速度下对Ti6Al4V反对对的发育表面的摩擦和磨损性能。摩擦试验结果表明,沉积在激光加工表面上的涂层有助于降低摩擦系数(COF)和磨损损失。在提出的磨损模型的帮助下讨论了相关的磨损机制。对于激光纹理表面,已经报道了纹理诱导的微切割机制的实验证据。用于LSP表面的弱碳化物的产生降低了涂层粘附,导致摩擦力差。为了加工Ti6Al4V,实现了涂覆的LST表面的改进性能。表观摩擦系数和侧面磨损分别降低了64%和65%。

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