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Synthesis and properties of ceramic-based nanocomposite layer of aluminum carbide embedded with oriented carbon nanotubes

机译:定向碳纳米管嵌入的碳化铝陶瓷基纳米复合层的合成与性能

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In the present work, carbon nanotubes (CNTs) were embedded in aluminum carbide coating in desired vertical/horizontal direction in order to fabricate a nanocomposite layer with unidirectional enhanced mechanical properties. A novel method based on monopolar pulsed plasma electrolysis under magnetic field was used for this purpose. Nanostructure of the obtained nanocomposite layer was examined with high precision figure analysis of SEM, AFM and TEM nanostructures. The mechanical and tribological properties of these coatings were investigated with respect to the direction of the embedded CNTs. The coefficient of friction was lowered from 0.2 to less than 0.1 in a pin-on-disc test against steel with dramatic affected coating wear rate by a decrease to near 400% with respect to raw substrate. The lower friction is attributed to more extensive creation of amorphous carbon on the counter surface and also in the coating wear track. As a conclusion, this method is appropriate for fabrication of hard coating on the surface of low-melting-point metals and light alloys.
机译:在当前的工作中,碳纳米管(CNT)沿所需的垂直/水平方向嵌入碳化铝涂层中,以制造具有单向增强机械性能的纳米复合材料层。为此,采用了一种基于磁场下单极脉冲等离子体电解的新方法。通过对SEM,AFM和TEM纳米结构的高精度图形分析来检查获得的纳米复合层的纳米结构。这些涂层的机械和摩擦学性能是针对嵌入的CNT的方向进行研究的。在对钢板的针盘试验中,摩擦系数从0.2降低到小于0.1,相对于原始基材,涂层磨损率受到显着影响,降低了近400%。较低的摩擦力归因于在相对表面以及在涂层磨损道中产生了更多的无定形碳。结论是,该方法适用于在低熔点金属和轻合金表面上制造硬涂层。

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