Numerical and Experimental Investigation of the Effect of Current Density on the Anomalous Codeposition of Ternary Fe-Co-Ni Alloy Coatings
Abstract
:1. Introduction
2. Experimental Procedure for Electrodeposition
2.1. Materials and Electrodeposition
2.2. Electrodeposited Coating Analysis
3. Modelling of the Electrodeposition
3.1. Basic Assumptions
- 3.
- The walls of the electrochemical cell were assumed to be insulated, and the calculation domain was an isothermal system.
- 4.
- There was no extra stirring in the electrolyte, and the convection generated by hydrogen escaping along the electrodes was neglected [31].
- 5.
3.2. Governing Equations
3.3. Boundary Conditions and Mesh
4. Results and Discussion
4.1. Simulating Results
4.2. Experimental Results
4.3. Anomalous Behaviour Analysis
5. Conclusions
- The electrodeposition process was simulated based on the tertiary current distribution. Although there was a deviation between the simulated and experimental results in terms of the coating thickness and elemental contents, the numerical model was still able to predict the variation trend for thickness and element composition and to facilitate the design of the electrodeposition parameters.
- Gradient-structured coatings were electrochemically fabricated using alternating current and direct current in sequence. Due to hydrogen evolution, microcracks perpendicular to the substrate occurred at the cross-section of the coating, and the network crack was distributed on the coating surface. The XRD patterns show that the deposited coatings consisted of the solid-solution phases α-Fe and γ(Fe, Ni) and the metallic compound Co3Fe7; the current density in the present studied range had a small influence on the phase composition. The grain sizes on the coating surface varied from 15 nm to 20 nm, and the current density showed no noticeable effect on the grain size. The microhardness of the deposited coatings ranged from 625 HV to 655 HV. Meanwhile, the average microhardness increased slightly as the current density increased from 5 A/dm2 to 10 A/dm2 and then decreased when the current density further increased.
- The CRV was calculated to analyse the degree of anomaly. With increasing applied current density, the CRV of Fe increased slightly, while the CRV of Co decreased sharply, and the CRV of Ni remained steady at a relatively low current density and then increased gradually. Finally, the metal ions and hydrogen atom concentrations in the vicinity of the cathodic surface were numerically calculated. With increasing applied current density, the concentrations of Co2+ and Ni2+ decreased, while the Fe2+ and hydrogen atom concentration profiles showed the reverse trend.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Research Objects | Governing Equations | Parameter Explanations and Notes |
---|---|---|
Electrodes | ||
Electrolyte | is electric flux. | |
Electrode interface | ||
Local current density | are the species . |
Symbol | Terminology | Value | Unit |
---|---|---|---|
Eeq_Fe | Iron equilibrium potential | −0.444 | V |
Eeq_Co | Cobalt equilibrium potential | −0.290 | V |
Eeq_Ni | Nickel equilibrium potential | −0.276 | V |
j0 | Current density | 5~25 | A/dm2 |
jFe | Exchange current density of iron [39] | 2.09 | A/m2 |
jCo | Exchange current density of cobalt [40] | 0.23 | A/m2 |
jNi | Exchange current density of nickel [29] | 0.1 | A/m2 |
jH | Exchange current density of hydrogen [26] | 2 × 10−5 | A/m2 |
ρFe | Density of iron | 7900 | kg/m3 |
ρCo | Density of cobalt | 8900 | kg/m3 |
ρNi | Density of nickel | 8910 | kg/m3 |
MFe | Molar mass iron | 56 | g/mol |
MCo | Molar mass of cobalt | 58.93 | g/mol |
MNi | Molar mass of nickel | 58.693 | g/mol |
cFe | Fe2+ concentration | 0.765 | mol/L |
cCo | Co2+ concentration | 0.42 | mol/L |
cNi | Ni2+ concentration | 0.168 | mol/L |
zFe | Charge of iron | 2 | - |
zCo | Charge of cobalt | 2 | - |
zNi | Charge of nickel | 2 | - |
DFe | Diffusion coefficient of iron | 1.59 × 10−9 | m2/s |
DCo | Diffusion coefficient of cobalt | 1.31 × 10−9 | m2/s |
DNi | Diffusion coefficient of nickel | 1.27 × 10−9 | m2/s |
A | Cathode surface area | 1 | dm2 |
σ | Electrolyte conductivity [29] | 10 | S/m |
T0 | Temperature | 348.15 | K |
Ac | Tafel slope for hydrogen evolution [41] | −188 | mV |
αa | Anode transfer coefficient [41] | 0.5 | - |
αc | Cathode transfer coefficient [41] | 0.5 | - |
Boundary (Surface) | V | A | c |
---|---|---|---|
Electrochemical cell | - | ||
Bath | - | ||
Anode | |||
Cathode |
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Zhang, S.; Yu, J.; Liu, Z.; Yin, Y.; Qiao, C. Numerical and Experimental Investigation of the Effect of Current Density on the Anomalous Codeposition of Ternary Fe-Co-Ni Alloy Coatings. Materials 2022, 15, 6141. https://doi.org/10.3390/ma15176141
Zhang S, Yu J, Liu Z, Yin Y, Qiao C. Numerical and Experimental Investigation of the Effect of Current Density on the Anomalous Codeposition of Ternary Fe-Co-Ni Alloy Coatings. Materials. 2022; 15(17):6141. https://doi.org/10.3390/ma15176141
Chicago/Turabian StyleZhang, Shuai, Jing Yu, Zhengda Liu, Yanjun Yin, and Chenfeng Qiao. 2022. "Numerical and Experimental Investigation of the Effect of Current Density on the Anomalous Codeposition of Ternary Fe-Co-Ni Alloy Coatings" Materials 15, no. 17: 6141. https://doi.org/10.3390/ma15176141
APA StyleZhang, S., Yu, J., Liu, Z., Yin, Y., & Qiao, C. (2022). Numerical and Experimental Investigation of the Effect of Current Density on the Anomalous Codeposition of Ternary Fe-Co-Ni Alloy Coatings. Materials, 15(17), 6141. https://doi.org/10.3390/ma15176141