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Mechanical and microstructural characterization of Cu/CNT nanocomposite layers fabricated via friction stir processing

机译:通过摩擦搅拌工艺制备的Cu / CNT纳米复合材料层的力学和微观结构表征

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In this study, the effect of incorporation of carbon nanotubes into pure copper was investigated through friction stir processing (FSP). To this end, FSP has been performed using one and three passes. Moreover, the changes in peak temperature of one-pass friction stir processing performed by tools with different shoulder diameters have been recorded. It was found that for the tool with smaller shoulder, the process temperature peak has been significantly reduced. Remarkable reduction in grain size of Cu/carbon-nanotube nanocomposites was observed as compared with the pure copper. Raman spectroscopy results proved a higher extent of degradation of carbon nanotubes upon increasing the friction stir processing passes. On the other hand, microhardness and wear results showed that as the carbon nanotubes are introduced to the pure copper, hardness of composites processed via one- and three-friction stir processing passes showed enhancements of 65 and 105 %, respectively, and the weight losses were also decreased 31 and 68 %, respectively. It was also observed that friction coefficient of one-pass processed composite is lower than that of the pure copper due to the presence of carbon nanotube clusters. Whereas, the friction coefficient of three-pass processed composite was increased regarding to the pure copper. The reduction in slope of wear weight loss upon increasing the applied force at the wear test signified the higher efficiency of the processed composites under harsh conditions.
机译:在这项研究中,通过摩擦搅拌工艺(FSP)研究了将碳纳米管掺入纯铜的效果。为此,已使用一遍和三遍来执行FSP。而且,已经记录了由具有不同肩部直径的工具执行的单程摩擦搅拌处理的峰值温度的变化。发现对于肩部较小的工具,过程温度峰值已大大降低。与纯铜相比,观察到Cu /碳纳米管纳米复合材料的晶粒尺寸显着减小。拉曼光谱法结果证明,随着增加摩擦搅拌过程的通过,碳纳米管的降解程度更高。另一方面,显微硬度和磨损结果表明,当将碳纳米管引入纯铜时,通过一遍和三遍搅拌处理的复合材料的硬度分别提高了65%和105%,并且重量减轻分别下降31%和68%。还观察到,由于存在碳纳米管簇,单程处理的复合材料的摩擦系数低于纯铜的摩擦系数。相对于纯铜,三道次加工复合材料的摩擦系数增加了。在磨损试验中增加施加力时磨损失重斜率的降低表明在苛刻条件下加工复合材料的效率更高。

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