Zn–Ni Alloy Plating with Trivalent Chromate: Effects of NaF Additive Concentration and Treatment Time on Film Color, Thickness, and Electrochemical Properties
Abstract
:1. Introduction
2. Materials and Methods
2.1. Zn–Ni Alloy Plating and Chromate Coating Process
2.2. Electrochemical, Morphological, and Chemical Characterization
3. Results
3.1. Effects of NaF Concentration and Treatment Time on Corrosion Rate of Zn–Ni Alloy Plating with Colored Chromate
3.2. Effects of NaF Concentration and Treatment Time on Changes in the Surface Structure of Zn–Ni Alloy Plating with Colored Chromate
3.3. Effects of NaF Concentration and Treatment Time on Changes in the Film Color of Zn–Ni Alloy Plating with Colored Chromate
3.4. Coating Thickness Measurement and STEM-EDS by Chromate Coating Color
3.5. Measurement of Component and Depth Distributions of Zn–Ni-Alloy-Plated Specimens with Colored Chromate by NaF Concentration
4. Theory
5. Conclusions
- The chromate film formed in the gel state was dried and subsequently contracted by the internal tensile stress to form a film.
- As the NaF concentration and chromate coating treatment time increase, the cracks on the surface become finer. This indicates that NaF influences the formation of the chromate film and acts as a catalyst, accelerating the film formation.
- The results of the electrochemical measurement indicate that the current density decreases as the NaF concentration increases. Because the chromate film exists in a passive state, the passivation via chromate conversion treatment suppresses the current density, consequently improving the corrosion resistance by delaying corrosion. However, in the case of 150%, corrosion resistance was low due to overchromating.
- In TEM cross-sectional observation, the chromate film color changes to yellow, purple, and green with increasing treatment time. The film thickness is 153.71 nm for yellow, 199.34 nm for purple, and 228.3 nm for green. This behavior agrees with the theoretical differences in the film thickness with respect to color because the film thickness increases with the treatment time.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Category | NaF Concentration (%) | Immersion Time (s) | L *(D65) | a *(D65) | b *(D65) |
---|---|---|---|---|---|
(a) | 0 | 30 | 54.72 | −1.70 | −10.94 |
(b) | 50 | 58.64 | 4.74 | 15.19 | |
(c) | 100 | 62.96 | 1.41 | 17.64 | |
(d) | 150 | 50.02 | 2.12 | 11.54 | |
(e) | 0 | 60 | 67.77 | −3.96 | 1.96 |
(f) | 50 | 51.07 | 9.00 | −13.97 | |
(g) | 100 | 52.72 | 10.25 | −9.36 | |
(h) | 150 | 49.00 | 9.96 | −4.32 | |
(i) | 0 | 90 | 59.84 | −0.22 | 3.66 |
(j) | 50 | 55.84 | −9.48 | −5.03 | |
(k) | 100 | 54.18 | −3.78 | −5.79 | |
(l) | 150 | 47.79 | 5.01 | 5.90 | |
(m) | 0 | 120 | 55.64 | 8.15 | −15.06 |
(n) | 50 | 59.32 | −9.34 | 5.91 | |
(o) | 100 | 57.08 | −10.19 | −1.41 | |
(p) | 150 | 44.46 | −0.28 | 5.01 |
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Son, B.-K.; Choi, J.-W.; Jeon, S.-B.; Son, I. Zn–Ni Alloy Plating with Trivalent Chromate: Effects of NaF Additive Concentration and Treatment Time on Film Color, Thickness, and Electrochemical Properties. Coatings 2022, 12, 1160. https://doi.org/10.3390/coatings12081160
Son B-K, Choi J-W, Jeon S-B, Son I. Zn–Ni Alloy Plating with Trivalent Chromate: Effects of NaF Additive Concentration and Treatment Time on Film Color, Thickness, and Electrochemical Properties. Coatings. 2022; 12(8):1160. https://doi.org/10.3390/coatings12081160
Chicago/Turabian StyleSon, Byung-Ki, Ji-Won Choi, Su-Byung Jeon, and Injoon Son. 2022. "Zn–Ni Alloy Plating with Trivalent Chromate: Effects of NaF Additive Concentration and Treatment Time on Film Color, Thickness, and Electrochemical Properties" Coatings 12, no. 8: 1160. https://doi.org/10.3390/coatings12081160
APA StyleSon, B. -K., Choi, J. -W., Jeon, S. -B., & Son, I. (2022). Zn–Ni Alloy Plating with Trivalent Chromate: Effects of NaF Additive Concentration and Treatment Time on Film Color, Thickness, and Electrochemical Properties. Coatings, 12(8), 1160. https://doi.org/10.3390/coatings12081160