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Ni-B/SiC nanocomposite coating obtained by pulse plating and evaluation of its electrochemistry and mechanical properties

机译:通过脉冲电镀获得的Ni-B / SiC纳米复合涂层和其电化学和机械性能的评价

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One of the important techniques for developing coatings with proper electrochemical and mechanical properties is electrodeposition method. The goal of the current work is to optimise contents of SiC particles in the bath to achieve Ni-B/SiC composite coatings with high corrosion resistance and wear properties. Pulse plating method was used to prepare Ni-B/SiC composite deposits of Watts bath including trimethylamine borane (TMAB) and SiC nanopowder addition. The effects of SiC concentration in the bath, which is the principal factor, on the main properties of the coatings were studied. Field Emission Scanning Electron Microscopy (FE-SEM), Energy-dispersive Spectroscopy (EDS) and X-ray diffraction (XRD) were used to analyse the characterisations of the coatings. In order to evaluate the corrosion behaviour of the coatings, the open circuit potential (OCP), electrochemical impedance (EIS) and potentiodynamic polarisation (Tafel) tests were applied in 3.5% NaCl solution. Moreover, the pin-on-disc procedure was designed to assess the wear behaviour of coatings. Increasing the SiC nanoparticles up to 12 g l(-1) in the bath leads to produce a coating including 11 wt-% SiC particles which have a positive effect on the coating microstructure. Corrosion resistance improves by raising 4-12 g l(-1) SiC incorporation in the coatings; so that corrosion resistance of the Ni-B/SiC12 g l(-1) coating reaches to nearly 62 k omega. The presence of SiC phase in the coating can result in decrease electrochemical active regions; therefore, this phenomenon can promote corrosion resistance of the composite coatings. Ni-B/SiC 12 g l(-1) composite coating illustrates the best wear resistance in comparison with the others after which it shows the lowest weight losses (0.98 mg cm(-2)) and the friction coefficient of 0.57 due to the formation of the packed structures with less porosity and high content of SiC particles in the deposit.
机译:具有适当电化学和机械性能的涂层的重要技术之一是电沉积方法。目前工作的目的是优化浴中SiC颗粒的含量,以实现具有高耐腐蚀性和磨损性能的Ni-B / SiC复合涂层。脉冲电镀方法用于制备瓦特浴的Ni-B / SiC复合沉积物,包括三甲胺硼烷(TMAB)和SiC纳米粉末加成。研究了SiC浓度在浴中的浓度的影响,这是主要因素的涂料的主要性质。场发射扫描电子显微镜(Fe-SEM),能量分散光谱(EDS)和X射线衍射(XRD)用于分析涂层的特征。为了评估涂层的腐蚀行为,在3.5%NaCl溶液中施加开放电路电位(OCP),电化学阻抗(EIS)和电位偏振(TAFEL)试验。此外,设计销盘手术以评估涂层的磨损行为。在浴中增加高达12g L(-1)的SiC纳米颗粒导致产生包含11wt%的SiC颗粒的涂层,其对涂层微观结构具有积极影响。通过在涂层中升高4-12g L(-1)SiC掺入,耐腐蚀性改善;因此,Ni-B / SiC12 G L(-1)涂层的耐腐蚀性达到近62kΩ。涂层中的SiC相的存在可导致电化学活性区域降低;因此,这种现象可以促进复合涂层的耐腐蚀性。 Ni-B / SiC 12 GL(-1)复合涂层说明了与其他相比最好的耐磨性,之后其显示其最低重量损失(0.98mg cm(-2))和由于地层而导致的0.57的摩擦系数封装结构具有较少的孔隙率和沉积物中的SiC颗粒的高含量。

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