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超疏水结构对AZ91D镁合金微摩擦磨损性能的影响 被引量:5
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作者 张倩倩 漆雪莲 张会臣 《表面技术》 EI CAS CSCD 北大核心 2018年第11期102-108,共7页
目的研究微/纳米复合超疏水结构的摩擦磨损机制,提高镁合金微摩擦磨损性能。方法首先采用激光刻蚀获得微米结构,然后表面涂覆SiO_2纳米颗粒,获得微/纳米复合结构,最后涂覆低表面能物质获得超疏水表面。用接触角测量仪测量超疏水表面的... 目的研究微/纳米复合超疏水结构的摩擦磨损机制,提高镁合金微摩擦磨损性能。方法首先采用激光刻蚀获得微米结构,然后表面涂覆SiO_2纳米颗粒,获得微/纳米复合结构,最后涂覆低表面能物质获得超疏水表面。用接触角测量仪测量超疏水表面的静态接触角,使用微摩擦磨损实验机分析超疏水表面的摩擦磨损性能,使用扫描电子显微镜观察表面磨痕形貌。结果当载荷为1 N时,超疏水表面的摩擦系数约为0.04,基体表面约为0.06。随着载荷的增加,超疏水表面的摩擦系数逐渐与基体相近,并逐渐超过基体。随着时间的增加,超疏水表面的摩擦系数呈增加趋势,由0.04逐渐增加到0.08,基体试样没有明显的上升趋势。相同条件下,超疏水表面的磨痕宽度大于基体表面,但磨痕宽度的增大趋势小于基体表面。结论微/纳米复合结构超疏水表面的摩擦磨损过程不同于光滑基体。超疏水表面的磨损首先发生于微/纳米凸起结构,之后发生于被微/纳米凸起填平的微米凹坑区,然后发生于激光加工热影响区表面,最后发生于镁合金基体。在所受载荷低于1~3 N时,超疏水表面微凸起结构能延缓超疏水表面摩擦磨损的发生,改善耐磨性能。 展开更多
关键词 镁合金 超疏水 微/纳米复合结构 激光刻蚀 耐磨性 磨损机制
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Microstructure and abrasive wear behaviour of anodizing composite films containing Si C nanoparticles on Ti6Al4V alloy 被引量:6
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作者 李松梅 郁秀梅 +3 位作者 刘建华 于美 吴量 杨康 《Journal of Central South University》 SCIE EI CAS 2014年第12期4415-4423,共9页
Anodized composite films containing Si C nanoparticles were synthesized on Ti6Al4 V alloy by anodic oxidation procedure in C4O6H4Na2 electrolyte. Scanning electron microscopy(SEM), energy dispersive spectroscopy(EDS) ... Anodized composite films containing Si C nanoparticles were synthesized on Ti6Al4 V alloy by anodic oxidation procedure in C4O6H4Na2 electrolyte. Scanning electron microscopy(SEM), energy dispersive spectroscopy(EDS) and X-ray photoelectron spectroscopy(XPS) were employed to characterize the morphology and composition of the films fabricated in the electrolytes with and without addition of Si C nanoparticles. Results show that Si C particles can be successfully incorporated into the oxide film during the anodizing process and preferentially concentrate within internal cavities and micro-cracks. The ball-on-disk sliding tests indicate that Si C-containing oxide films register much lower wear rate than the oxide films without Si C under dry sliding condition. Si C particles are likely to melt and then are oxidized by frictional heat during sliding tests. Potentiodynamic polarization behavior reveals that the anodized alloy with Si C nanoparticles results in a reduction in passive current density to about 1.54×10-8 A/cm2, which is more than two times lower than that of the Ti O2 film(3.73×10-8 A/cm2). The synthesized composite film has good anti-wear and anti-corrosion properties and the growth mechanism of nanocomposite film is also discussed. 展开更多
关键词 Ti6Al4V alloy anodic oxidation Si C nanoparticle composite film
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