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首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Microstructure and tribological behaviors of MoN-Cu nanocomposite coatings sliding against Si3N4 ball under dry and oil-lubricated conditions
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Microstructure and tribological behaviors of MoN-Cu nanocomposite coatings sliding against Si3N4 ball under dry and oil-lubricated conditions

机译:干燥和油润滑条件下Si3N4球滑动Mon-Cu纳米复合涂层的微观结构和摩擦学行为

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摘要

MoN and MoN-Cu coatings were deposited on the substrates of 304 stainless steel using direct current (DC) magnetron sputtering. The chemical composition and microstructure of the as-prepared MoN and MoN-Cu coatings were analyzed by scanning electron microscopy (SEM), energy dispersive spectrometer (EDS), X-ray diffraction (XRD), transmission electron microscopy (TEM) and X-ray photoelectron spectroscopy (XPS). The hardness and elastic modulus of the coatings were tested by nanoindentation. The tribological performances of both kinds of coatings sliding against Si3N4 ball under dry and PAO oil-lubricated conditions were evaluated using a ball-on-disc wear tester. The characterization results show that both MoN and MoN-Cu coatings exhibit polycrystalline face-centered cubic (FCC) structures. The MoN coating presents an equiaxed crystal growth manner, while the MoN-Cu coating grows in an obvious columnar crystal. The doping of Cu element exhibits the grain refining effect, endowing the MoN-Cu coating with grain size of 9 nm smaller than that of 12 nm for MoN coating. The hardness and elastic modulus of the MoN-Cu were slightly lower than those of the MoN, due to the doping of Cu element into the coating. The tribo-test results show that the MoN-Cu coating presents superior tribological performances than MoN coating under dry and oil-lubricated conditions, which is closely related to a large number of mixed oxides with good lubrication effect generated on the wear surface for the MoN-Cu coating. The produced oxides on the wear interfaces can also prevent the MoN-Cu coating and the counterpart ball from direct contact, which greatly reduces the friction and wear of the composite coating. Finally, the possible wear mechanisms of both kinds of coatings under oil-lubricated conditions were illustrated by schematic model.
机译:使用直流(DC)磁控溅射沉积在304不锈钢基板上的MON和MON-CU涂层。通过扫描电子显微镜(SEM),能量分散光谱仪(EDS),X射线衍射(XRD),透射电子显微镜(TEM)和X-分析由扫描电子显微镜(SEM)和MON-CU涂层的化学成分和微观结构。光线光电子体光谱(XPS)。通过纳米狭窄测试涂层的硬度和弹性模量。使用圆盘上磨损测试仪评估在干燥和Pao油润滑条件下滑动抗Si3N4球的两种涂层的摩擦学性能。表征结果表明,MON和MON-CU涂层两者和MON-CU涂层都表现出多晶面对的立方(FCC)结构。周一涂层呈现等型晶体生长方式,而Mon-Cu涂层在明显的柱状晶体中生长。 Cu元素的掺杂表现出晶粒精制效果,赋予晶粒尺寸为9nm的MON-Cu涂层小于12nm的Mon涂层。由于Cu元素掺杂到涂层中,Mon-Cu的硬度和弹性模量略低于周一的略低。摩擦试验结果表明,MON-Cu涂层比干燥和油润滑条件下的多元涂层呈现出优异的摩擦学性能,这与大量混合氧化物密切相关,良好的润滑效果在Mon的磨损表面上产生良好的润滑效果-Cu涂层。磨损界面上的产生的氧化物还可以防止MON-CU涂层和对手球直接接触,这大大降低了复合涂层的摩擦和磨损。最后,通过示意图说明了油润滑条件下两种涂层的可能磨损机制。

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