Behaviour and Mechanisms of Alkali Metal Sulphate-Induced Cyclic Hot Corrosion in Relation to Gradients and Preoxidised MCrAlY-Type Coatings
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Coatings before Corrosion
3.2. Hot Corrosion Kinetics
3.3. Corrosion Data after 60 h of Exposure of Samples
3.4. Corrosion Data after 120 h of Exposure of Samples
3.5. Corrosion Data after 220 h of Exposure of Samples
3.6. Surface Morphologies
- (1)
- Some NiO particles dissolved in the eutectic molten salt and formed NaNiO2 and/or Na2NiO2;
- (2)
- As mentioned previously, the specimens were cyclically taken out for washing and recoating with the salt every 20 h in the hot corrosion test. Most salts were washed away after the specimens were immersed in the boiling distilled water, but some of those freshly generated tiny particles of NaNiO2 and/or Na2NiO2 remained in the clamps and under the protection of the NiO boundaries. Those particles maintained the clearance between neighbouring NiO grains.
4. Discussion
- (1)
- Although it is indicated that the compositional distribution of sulphur presents an approximately positive solubility gradient from the surface to the substrate in Figure 9, it represents all forms of sulphur containing the dissociative and the indivisible. Actually, the concentration of S has a negative solubility gradient. This is an additional assumption based on the fact that S persistently diffused inwardly. It is also worth mentioning that the solubility gradient of O is also assumed to be negative from the surface to the alloy substrate. Above all, it can be inferred that the newly generated dissociated S diffuses into the D zone due to its negative solubility gradient.
- (2)
- Cr does not have a negative gradient like S, and it diffuses outwardly overall. Actually, locally, it could move in three ways: migrating outwardly to the surface, migrating inwardly to the substrate or staying put. When Cr moved outwardly to the surface of the specimen or stayed put, the inwardly diffusing S would meet it and react again to form CrS and then CrS would react with O to form Cr2O3. That would occur in an endless loop. Only when Cr moved inwardly to the D zone would the endless loop be terminated.
5. Conclusions
- (1)
- In this study, conventional, gradient and preoxidised coatings were prepared. The preoxidised coating had a two-layer scale. Its outer layer was a mixed oxide layer and its inner layer was a continuous alumina layer.
- (2)
- The order of the hot corrosion resistance of the three coatings was: the conventional coating < the gradient coating < the preoxidised coating. Regarding the ordering of the conventional coating < the gradient coating, this was because the instinctive concentration of aluminium in the outer layer of the gradient coating was higher than that in the conventional coating; and the ordering of the gradient coating < the preoxidised coating was due to the fact that the preformed two-layer scale system formed through the preoxidation treatment retarded the occurrence of the internal oxidation–sulphidation zone to some extent.
- (2)
- The internal sulphidation–oxidation model has been elucidated and extended, explaining in detail why the chromium sulphide zone is below the aluminium oxide zone.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Target Materials | NiCrAlY | AlNiY |
---|---|---|
Working pressure (Pa) | 2.3 × 10−1 | 2.7 × 10−1 |
Arc voltage (V) | 23–25 | 19–20 |
Arc current (A) | 85–87 | 62–63 |
Bias voltage (−V) | 220–230 | 220–230 |
Bias duty cycle (%) | 30 | 30 |
Temperature (°C) | 300–400 | 300–400 |
The distance between targets and substrates (mm) | 120 | 120 |
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Yu, D.; Gong, J.; Sun, J.; Qian, Y. Behaviour and Mechanisms of Alkali Metal Sulphate-Induced Cyclic Hot Corrosion in Relation to Gradients and Preoxidised MCrAlY-Type Coatings. Coatings 2022, 12, 912. https://doi.org/10.3390/coatings12070912
Yu D, Gong J, Sun J, Qian Y. Behaviour and Mechanisms of Alkali Metal Sulphate-Induced Cyclic Hot Corrosion in Relation to Gradients and Preoxidised MCrAlY-Type Coatings. Coatings. 2022; 12(7):912. https://doi.org/10.3390/coatings12070912
Chicago/Turabian StyleYu, Daqian, Jun Gong, Jianping Sun, and Yuanji Qian. 2022. "Behaviour and Mechanisms of Alkali Metal Sulphate-Induced Cyclic Hot Corrosion in Relation to Gradients and Preoxidised MCrAlY-Type Coatings" Coatings 12, no. 7: 912. https://doi.org/10.3390/coatings12070912
APA StyleYu, D., Gong, J., Sun, J., & Qian, Y. (2022). Behaviour and Mechanisms of Alkali Metal Sulphate-Induced Cyclic Hot Corrosion in Relation to Gradients and Preoxidised MCrAlY-Type Coatings. Coatings, 12(7), 912. https://doi.org/10.3390/coatings12070912