CMAS Corrosion Behavior of Nanostructured YSZ and Gd-Yb-Y-Stabilized Zirconia Coatings
Abstract
:1. Introduction
2. Materials and Methods
2.1. Preparation of CMAS Powder
2.2. Preparation of Coatings
2.3. CMAS Corrosion Experiments
2.4. Characterization
3. Results
3.1. CMAS Powder
3.2. Coatings before and after CMAS Corrosion
3.2.1. Phase Composition
3.2.2. Microstructure and Chemical Composition
3.2.3. Microhardness
4. Discussion
4.1. Penetration Depth
4.2. Coatings Densification
4.3. Phase Transition and Spheroidization
4.4. Corrosion Mechanisms
5. Conclusions
- Decreased porosity and increased microhardness are found in all three coatings after CMAS corrosion. The increase in microhardness of n-YSZ coatings is more pronounced than that of YSZ coatings, while that of GYYSZ coatings is relatively small.
- Loose layers consisting of fine spherical m-ZrO2 particles are formed in both corroded n-YSZ and YSZ coatings. The thickness of loose layers and the degree of phase transition in the coatings increase with corrosion time. More pronounced phase transition and earlier spalling are observed in n-YSZ coatings compared with YSZ coatings.
- No phase transition or exfoliation occurs in GYYSZ coating. Instead, the formation of coarse spherical particles in the coatings and diffusion into CMAS are observed.
- The CMAS corrosion resistance of the coatings follows the order: GYYSZ > YSZ > n-YSZ. Doping ZrO2 with Gd/Yb/Y elements enhances both the phase stability and the resistance to CMAS corrosion of the coatings.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Composition (in wt.%) | Granularity (μm) | Manufacturer |
---|---|---|
6-8Y2O3-ZrO2 | 20–60 | Imerys (Shenyang, China) |
Nano 6-8Y2O3-ZrO2 | 31–63 | Shiyuan (Suzhou, China) |
5.2Gd2O3-5.6Yb2O3-9.5Y2O3-ZrO2 | 30–74 | Institute of Metals, China Academy of Sciences (Shenyang, China) |
Parameter | Unit | Value |
---|---|---|
Voltage | V | 70 |
Current | A | 590 |
Primary gas, Ar | slpm (standard liter per minute) | 38 |
Secondary gas, H2 | slpm (standard liter per minute) | 1.8 |
Spray distance | mm | 90 |
Gd (wt.%) | Yb (wt.%) | Y (wt.%) | Zr (wt.%) | O (wt.%) | RE/Zr | |
---|---|---|---|---|---|---|
1 | - | - | 6.86 | 69.43 | 23.71 | 0.10 |
2 | - | - | 7.12 | 69.31 | 23.58 | 0.10 |
3 | 5.54 | 6.06 | 8.98 | 58.93 | 20.50 | 0.35 |
Gd (wt.%) | Yb (wt.%) | Y (wt.%) | Zr (wt.%) | Ca (wt.%) | Mg (wt.%) | Al (wt.%) | Si (wt.%) | O (wt.%) | RE/Zr | |
---|---|---|---|---|---|---|---|---|---|---|
1 | - | - | 1.33 | 3.48 | 23.11 | 3.72 | 7.34 | 20.20 | 40.82 | 0.38 |
2 | - | - | 5.75 | 67.11 | 1.39 | 0.29 | 0.56 | 1.70 | 23.21 | 0.09 |
3 | - | - | 3.09 | 66.82 | 2.33 | 0.37 | 0.79 | 2.61 | 23.99 | 0.05 |
4 | - | - | 4.86 | 66.68 | 1.65 | 0.37 | 0.63 | 2.03 | 23.78 | 0.07 |
5 | - | - | 2.90 | 61.69 | 3.05 | 0.57 | 1.08 | 3.27 | 27.44 | 0.05 |
6 | 4.79 | 5.38 | 8.53 | 58.16 | 0.79 | 0.18 | 0.20 | 0.85 | 21.13 | 0.32 |
7 | 4.76 | 5.19 | 8.23 | 58.65 | 1.31 | 0.18 | 0.27 | 1.14 | 20.27 | 0.31 |
Gd (wt.%) | Yb (wt.%) | Y (wt.%) | Zr (wt.%) | Ca (wt.%) | Mg (wt.%) | Al (wt.%) | Si (wt.%) | O (wt.%) | RE/Zr | |
---|---|---|---|---|---|---|---|---|---|---|
1 | - | - | 1.36 | 3.17 | 23.20 | 3.79 | 7.31 | 20.11 | 41.06 | 0.43 |
2 | - | - | 3.19 | 66.79 | 1.80 | 0.36 | 0.62 | 1.88 | 25.35 | 0.05 |
3 | - | - | 3.02 | 72.07 | 0.73 | 0.21 | 0.30 | 1.00 | 22.67 | 0.04 |
4 | - | - | 2.45 | 65.71 | 2.13 | 0.53 | 0.80 | 2.29 | 26.09 | 0.04 |
5 | - | - | 2.63 | 55.62 | 5.96 | 0.96 | 2.02 | 5.77 | 27.04 | 0.05 |
6 | - | - | 2.61 | 67.67 | 1.50 | 0.23 | 0.48 | 1.72 | 25.80 | 0.04 |
7 | - | - | 2.83 | 78.85 | 0.59 | 0 | 0.01 | 0.79 | 16.93 | 0.04 |
8 | 5.30 | 5.66 | 8.49 | 58.57 | 0.63 | 0.20 | 0.10 | 0.55 | 20.50 | 0.33 |
9 | 4.39 | 5.14 | 8.16 | 61.27 | 1.12 | 0.10 | 0.04 | 0.51 | 19.28 | 0.29 |
10 | 3.43 | 4.55 | 6.75 | 55.46 | 3.09 | 0.44 | 0.62 | 2.11 | 23.55 | 0.27 |
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Zou, L.; Gao, M.; Xu, N.; Zhang, J.; Chang, X. CMAS Corrosion Behavior of Nanostructured YSZ and Gd-Yb-Y-Stabilized Zirconia Coatings. Coatings 2023, 13, 1623. https://doi.org/10.3390/coatings13091623
Zou L, Gao M, Xu N, Zhang J, Chang X. CMAS Corrosion Behavior of Nanostructured YSZ and Gd-Yb-Y-Stabilized Zirconia Coatings. Coatings. 2023; 13(9):1623. https://doi.org/10.3390/coatings13091623
Chicago/Turabian StyleZou, Lanxin, Minghao Gao, Na Xu, Jia Zhang, and Xinchun Chang. 2023. "CMAS Corrosion Behavior of Nanostructured YSZ and Gd-Yb-Y-Stabilized Zirconia Coatings" Coatings 13, no. 9: 1623. https://doi.org/10.3390/coatings13091623
APA StyleZou, L., Gao, M., Xu, N., Zhang, J., & Chang, X. (2023). CMAS Corrosion Behavior of Nanostructured YSZ and Gd-Yb-Y-Stabilized Zirconia Coatings. Coatings, 13(9), 1623. https://doi.org/10.3390/coatings13091623