2008•Applied Chemistry for EngineeringRequires access

Effect of Current Density on Nickel Surface Treatment Process

Yong‐Woon Kim, Koo-Hyung Joeng, In-Kwon Hong

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Abstract

Nickel plating thickness increased with the electric current density, and the augmentation was more thick in 6∼10 A/dm2 than low current. Hull-cell analysis was tested to evaluate the current density. Optimum thickness was obtained at a temperature of 60 ℃, and the pH fluctuation of 3.5∼4.0. Over the Nickel ion concentration of 300 g/L, plating thickness increased with the current density. The rate of decrease in nickel ion concentration was increased with the current density. The quantity of plating electro-deposition was increased at the anode surface, which was correlated with the increase of plating thickness. The plating thickness was increased because of the quick plating speed. However, the condition of the plating surface becomes irregular and the minuteness of nickel plating layer was reduced with the plating rate. After the corrosion test of 25 h, it was resulted in that maintaining low electric current density is desirable for the excellent corrosion resistance in lustered nickel plating. According to the program simulation, the thickness of diffusion layer was increased and the concentration of anode surface was lowered for the higher current densities. The concentration profile showed the regular distribution at low electric current density. The field plating process was controlled by the electric current density and the plating thickness instead of plating time for the productivity. The surface physical property of plating structure or corrosion resistance was excellent in the case of low electric current density.

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What this paper is about

Nickel plating thickness increased with the electric current density, and the augmentation was more thick in 6∼10 A/dm2 than low current. Hull-cell analysis was tested to evaluate the current density. Optimum thickness was obtained at a temperature of 60 ℃, and the pH fluctuation of 3.5∼4.0. Over the Nickel ion concentration of 300 g/L, plating thickness increased with the current density. The rate of decrease in nickel ion concentration was increased with the current density. The quantity of plating electro-deposition was increased at the anode surface, which was correlated with the increase of plating thickness. The plating thickness was increased because of the quick plating speed. However, the condition of the plating surface becomes irregular and the minuteness of nickel plating layer was reduced with the plating rate. After the corrosion test of 25 h, it was resulted in that maintaining low electric current density is desirable for the excellent corrosion resistance in lustered nickel plating. According to the program simulation, the thickness of diffusion layer was increased and the concentration of anode surface was lowered for the higher current densities. The concentration profile showed the regular distribution at low electric current density. The field plating process was controlled by the electric current density and the plating thickness instead of plating time for the productivity. The surface physical property of plating structure or corrosion resistance was excellent in the case of low electric current density.

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Available abstract

Nickel plating thickness increased with the electric current density, and the augmentation was more thick in 6∼10 A/dm2 than low current. Hull-cell analysis was tested to evaluate the current density. Optimum thickness was obtained at a temperature of 60 ℃, and the pH fluctuation of 3.5∼4.0. Over the Nickel ion concentration of 300 g/L, plating thickness increased with the current density. The rate of decrease in nickel ion concentration was increased with the current density. The quantity of plating electro-deposition was increased at the anode surface, which was correlated with the increase of plating thickness. The plating thickness was increased because of the quick plating speed. However, the condition of the plating surface becomes irregular and the minuteness of nickel plating layer was reduced with the plating rate. After the corrosion test of 25 h, it was resulted in that maintaining low electric current density is desirable for the excellent corrosion resistance in lustered nickel plating. According to the program simulation, the thickness of diffusion layer was increased and the concentration of anode surface was lowered for the higher current densities. The concentration profile showed the regular distribution at low electric current density. The field plating process was controlled by the electric current density and the plating thickness instead of plating time for the productivity. The surface physical property of plating structure or corrosion resistance was excellent in the case of low electric current density.

Key concepts: Current density, Plating (geology), Corrosion, Materials science, Nickel, Anode, Metallurgy, Current (fluid)

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