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Adhesion and friction performance of DLC/rubber: The influence of plasma pretreatment

机译:DLC /橡胶的粘附性和摩擦性能:血浆预处理的影响

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Diamond-like carbon (DLC) films are deposited on rubber surfaces to protect the rubber components, and surface pretreatment of the rubber substrates prior to the film deposition can improve the adhesion between the DLC films and the rubber. Thus, the principal purpose of this work concentrates on determining the effects of argon (Ar), oxygen (O_(2)), nitrogen (N_(2)), and hydrogen (H_(2)) plasma pretreatments on the adhesion and friction performance of the DLC films deposited on rubber (DLC/rubber). The results indicated that the Ar plasma pretreatment promoted the formation of a compact layer on the rubber surface. By contrast, massive fillers were exposed on the rubber surface after oxygen or nitrogen plasma pretreatments. Moreover, the typical micrometer-scale patches divided by random cracks were observed on the surface of DLC/rubber, except for the sample pretreated with oxygen plasma. The adhesion of DLC/rubber was found to strengthen with the removal of weak boundary layers and the generation of free radicals on the rubber surface after plasma pretreatment. The tribo-tests revealed that DLC/rubber with O_(2), N_(2), and H_(2)plasma pretreatments cannot achieve optimal friction performance. Significantly, DLC/rubber with Ar plasma pretreatment exhibited a low and stable friction coefficient of 0.19 and superior wear resistance, which was correlated to the high adhesion, good load-bearing of the rubber surface, and the approximate sine function of the surface profile of the DLC film.
机译:金刚石碳(DLC)膜沉积在橡胶表面上以保护橡胶部件,并且在薄膜沉积之前橡胶基板的表面预处理可以改善DLC膜和橡胶之间的粘附性。因此,该工作的主要目的集中在测定氩(Ar),氧气(O_(2)),氮(N_(2))和氢气(H_(2))上的粘附和摩擦上的血浆预处理沉积在橡胶上的DLC薄膜的性能(DLC /橡胶)。结果表明,AR等离子体预处理促进了橡胶表面上的紧凑层的形成。相比之下,在氧气或氮等离子体预处理之后暴露在橡胶表面上的大规模填料。此外,除了用氧等离子体预处理的样品,观察到DLC /橡胶的表面除以随机裂缝的典型千分尺寸斑块。发现DLC /橡胶的粘附加强,随着去除弱边界层和等离子体预处理后橡胶表面上的自由基产生。摩擦试验显示,具有O_(2),N_(2)和H_(2)等离子体预处理的DLC /橡胶不能达到最佳的摩擦性能。显着地,具有AR等离子体预处理的DLC /橡胶显示出0.19的低且稳定的摩擦系数和优异的耐磨性,其与橡胶表面的高附着力,良好的承载件相关,以及表面轮廓的近似正弦功能相关DLC薄膜。

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