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Electroplating and characterization of Zn-Ni, Zn-Co and Zn-Ni-Co alloys

机译:Zn-Ni,Zn-Co和Zn-Ni-Co合金的电镀和表征

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Zn-Ni, Zn-Co and Zn-Ni-Co coatings were electrodeposited on mild steel from an acidic chloride bath containing p-aminobenzenesulphonic acid (SA) and gelatin. These additives changed the phase content in the coatings, most likely as a result of their adsorption at the surface of the cathode. The effect of gelatin was more pronounced than that of SA. The Faradaic efficiency was higher than 90%. As the current density was increased or the bath temperature was decreased, the concentration of the nobler metal in the coating increased. Both concentrations of Ni and Co in the ternary alloy increased as the applied current density was increased. Nickel and cobalt were found to have a synergistic catalytic effect. The thickness of all coatings increased as the applied current density was increased. The hardness increased with current density to a peak value, and then decreased. The rate of Zn deposition was heavily influenced by mass-transport limitation at high applied current densities, while the rates of Ni and Co deposition were not. The anomalous codeposition was explained by the great difference between the exchange current densities of Zn and the iron-group metal. Potentiodynamic polarization scans and electrochemical impedance spectroscopy showed that the corrosion resistance of the ternary Zn-Ni-Co alloy coatings was approximately 10 times higher than that of Zn-Ni and 7 times higher than that of Zn-Co. The improved corrosion resistance of the ternary alloy was attributed to its surface chemistry, phase content, texture, and surface morphology. The ternary Zn-Ni-Co coating may thus replace the conventional Zn-Ni and Zn-Co coatings in a variety of applications.
机译:Zn-Ni,Zn-Co和Zn-Ni-Co涂层从含有对氨基苯磺酸(SA)和明胶的酸性氯化物浴中电沉积在低碳钢上。这些添加剂改变了涂层中的相含量,这很可能是由于它们在阴极表面的吸附所致。明胶的作用比SA更明显。法拉第效率高于90%。随着电流密度的增加或熔池温度的降低,涂层中贵金属的浓度增加。随着施加电流密度的增加,三元合金中Ni和Co的浓度均增加。发现镍和钴具有协同催化作用。随着施加电流密度的增加,所有涂层的厚度也增加。硬度随电流密度增加到峰值,然后下降。在高施加电流密度下,锌的沉积速率受传质限制的影响很大,而镍和钴的沉积速率则不受此限制。 Zn和铁族金属的交换电流密度之间的巨大差异解释了异常共沉积。电位动力学极化扫描和电化学阻抗谱表明,三元Zn-Ni-Co合金涂层的耐蚀性比Zn-Ni高约10倍,比Zn-Co高7倍。三元合金抗腐蚀性能的提高归因于其表面化学性质,相含量,织构和表面形态。因此,在各种应用中,三元Zn-Ni-Co涂层可以代替常规的Zn-Ni和Zn-Co涂层。

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