Microstructure characteristics and tribological properties of gradient Cu-MoS2 self-lubricating coating fabricated by selective laser melting of ink-printed metal nanoparticles

IF 2.2 3区 工程技术 Q2 ENGINEERING, MECHANICAL Journal of Tribology-transactions of The Asme Pub Date : 2023-08-02 DOI:10.1115/1.4063083
Wenfeng Guo, Ronghe Bai, Tianyu Guan, Yu He, Junyan Liu
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Abstract

Self-lubricating coating has been used in industrial applications with severe conditions, such as high temperatures, vacuum, radiation, etc. In this paper, a selective laser melting based ink-printed metal nanoparticles (SLM-IP metal NPs) rapid manufacturing method was applied to fabricate Cu-MoS2 self-lubricating coating. A tailored ink consisting metal NPs, reductant and dispersant was deposited on a stainless steel substrate, forming the laminated gradient Cu-MoS2 coating. The microstructure and mechanical properties of the composite coating were characterized. The friction and wear behavior were experimentally investigated by dry sliding wear test at room and higher temperature (>200°C). The results indicated that the upper copper sulfur molybdenum compounds layer with homogeneously distributed MoS2 provided a significant friction reduction and wear resistance. The SLM-IP Cu-MoS2 coatings showed reduced friction coefficient by 54% compare to the pure Cu coating. The transitional Cu layer mitigated the abrupt changes in physical properties and enhanced the bonding strength between the coating and substrate. Especially, under the test condition of 200°C, the Cu-40 vol% MoS2 coating also presented an excellent resistance to oxidation and had a lower friction coefficient of 0.24. This research provided a feasibility of fabricating self-lubricating coatings by the SLM-IP metal NPs method for surface engineering technologies.
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油墨印刷金属纳米颗粒选择性激光熔化制备梯度Cu-MoS2自润滑涂层的微观结构特征和摩擦学性能
自润滑涂层已在高温、真空、辐射等恶劣条件下的工业应用中得到应用。本文采用选择性激光熔化基油墨印刷金属纳米粒子(SLM-IP金属纳米粒子)快速制造方法制备了Cu-MoS2自润滑涂层。将由金属NP、还原剂和分散剂组成的定制油墨沉积在不锈钢基底上,形成层叠梯度Cu-MoS2涂层。对复合涂层的微观结构和力学性能进行了表征。通过在室温和更高温度(>200°C)下的干滑动磨损试验,对摩擦磨损行为进行了实验研究。结果表明,具有均匀分布的MoS2的上部铜硫钼化合物层提供了显著的减摩和耐磨性。与纯Cu涂层相比,SLM-IP Cu-MoS2涂层的摩擦系数降低了54%。过渡Cu层减轻了物理性能的突变,提高了涂层和基体之间的结合强度。特别是,在200°C的测试条件下,Cu-40vol%MoS2涂层也表现出优异的抗氧化性,并且具有0.24的较低摩擦系数。本研究为表面工程技术提供了用SLM-IP金属纳米粒子方法制备自润滑涂层的可行性。
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来源期刊
Journal of Tribology-transactions of The Asme
Journal of Tribology-transactions of The Asme 工程技术-工程:机械
CiteScore
4.20
自引率
12.00%
发文量
117
审稿时长
4.1 months
期刊介绍: The Journal of Tribology publishes over 100 outstanding technical articles of permanent interest to the tribology community annually and attracts articles by tribologists from around the world. The journal features a mix of experimental, numerical, and theoretical articles dealing with all aspects of the field. In addition to being of interest to engineers and other scientists doing research in the field, the Journal is also of great importance to engineers who design or use mechanical components such as bearings, gears, seals, magnetic recording heads and disks, or prosthetic joints, or who are involved with manufacturing processes. Scope: Friction and wear; Fluid film lubrication; Elastohydrodynamic lubrication; Surface properties and characterization; Contact mechanics; Magnetic recordings; Tribological systems; Seals; Bearing design and technology; Gears; Metalworking; Lubricants; Artificial joints
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