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Ni-Fe-Al2O3 electrodeposited nanocomposite coating with functionally graded microstructure

机译:具有功能梯度微观结构的Ni-Fe-Al2O3电沉积纳米复合涂层

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摘要

In this study, a Ni-Fe-Al2O3 nanocomposite coating was deposited on the substrate of low-carbon steel by electrodeposition from a sulphate-based bath. The effects of frequency and duty cycle were investigated to produce the functionally graded (FG) coating. For this purpose, first, the coatings with duty cycle-decreased method (DDM) were deposited in eight steps from 88 to 11%. At the second step, frequency-increased method (FIM) was utilized from 50 to 6400 Hz during eight steps. Assessing of coatings was carried out by scanning electron microscope (SEM), energy dispersive spectroscopy (EDS), potentiodynamic test, Vickers microhardness test and wear test. Microstructure evaluations gained by SEM and EDS demonstrated that the continuous alterations of duty cycle contribute for manufacturing of FG coatings, so that the maximum particle fraction was in the free surface of the coating and its amount was gradually decreased to the interface. These investigations showed that FIM had no effect on production of graded structure. Corrosion and wear tests indicated high corrosion and wear resistance of DDM coatings in comparison to FIM coatings. Investigating the best coatings obtained from both above methods exhibited 50 and 20% reduction in corrosion current density and wear rate, respectively, for DDM specimen in comparison to FIM sample.
机译:在这项研究中,通过从硫酸盐浴中进行电沉积,在低碳钢基材上沉积了Ni-Fe-Al2O3纳米复合涂层。研究了频率和占空比的影响,以生产功能渐变(FG)涂层。为此,首先,以88%至11%的八个步骤沉积占空比降低法(DDM)的涂层。在第二步中,在八个步骤中使用了从50到6400 Hz的频率增加方法(FIM)。涂层的评估是通过扫描电子显微镜(SEM),能量色散光谱(EDS),电势测试,维氏显微硬度测试和磨损测试进行的。通过SEM和EDS获得的微观结构评估表明,占空比的连续变化有助于FG涂层的制造,因此最大颗粒分数位于涂层的自由表面中,并且其含量逐渐降低至界面。这些研究表明,FIM对梯度结构的生产没有影响。腐蚀和磨损测试表明,与FIM涂层相比,DDM涂层具有较高的腐蚀和耐磨性。研究从以上两种方法获得的最佳涂层,与FIM样品相比,DDM样品的腐蚀电流密度和磨损率分别降低了50%和20%。

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