Thermal Stability of YSZ Thick Thermal Barrier Coatings Deposited by Suspension and Atmospheric Plasma Spraying
Abstract
:1. Introduction
2. Experiments Procedure
2.1. Coating Preparation
2.2. Coating Characterization
3. Results and Discussion
3.1. Phase Composition
3.2. Microstructure
3.3. Mechanical Properties
4. Conclusions
- (1)
- Both of the coatings displayed a unique microstructure with some obvious segmentation cracks and branching cracks. The measured Ds of the nanostructured APS and SPS YSZ coatings was about 2.5 cracks mm−1 and 4 cracks mm−1, respectively.
- (2)
- There were two distinct grain types in the two as-sprayed coatings: Larger columnar grains in the APS coating and smaller equiaxed grains in the SPS coating, revealing the different microstructure of the lamellar interface. The SPS coating was short of splats, while the splat-splat interactions in the APS coating were evident.
- (3)
- The initial metastable tetragonal (t’) phase of the APS and SPS coatings underwent tetragonal-monoclinic phase transformation after 1550 °C/40 h heat treatment. The poorer phase stability of SPS TTBCs may have a connection with the smaller grain size.
- (4)
- Thermal-aged APS and SPS coatings exhibited a significant increase in H and E values accompanied by pores healing and grain growth, and for the samples thermal aged at 1550 °C, the H and E values increased sharply during the initial stage then decreased after 80 h due to the phase decomposition. The segmented APS coatings had weak bonding between the lamellaes and more uniform pores distribution during thermal exposure, which caused the mean Vickers hardness value of APS TTBCs to be much lower than that of SPS TTBCs.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Parameters | APS Coating | SPS Coating |
---|---|---|
Plasma gas mixture | H2 + Ar | H2 + Ar + N2 |
Plasma gas flow rate (slpm) | H2: 7–9 | H2: 20–25 |
Ar: 30–36 | Ar: 170–176 | |
N2: 48–53 | ||
Carrier gas (slpm) | Ar: 3.0–3.5 | 14.5–15.2 |
Powder inject diameter (mm) | 1.8 | 1.5 |
Stand-off distance (mm) | 80–85 | 70–90 |
Feed rate (g/min) | 30 | 40 |
Samples | Tetragonal Phase (%) | Monoclinic Phase (%) | Average Grain Size (μm) | |
---|---|---|---|---|
APS TTBCs | as-sprayed | 95.5 | 0.41 | 0.96 |
1600 °C/24 h | 97.8 | 0.79 | 1.83 | |
1550 °C/100 h | 82.6 | 9.38 | 1.23 | |
SPS TTBCs | as-sprayed | 99.4 | 0.01 | 0.72 |
1600 °C/24 h | 95.6 | 2.45 | 1.58 | |
1550 °C/100 h | 70.4 | 21.1 | 1.18 |
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Tao, S.; Yang, J.; Zhai, M.; Shao, F.; Zhong, X.; Zhao, H.; Zhuang, Y.; Ni, J.; Li, W.; Tao, S. Thermal Stability of YSZ Thick Thermal Barrier Coatings Deposited by Suspension and Atmospheric Plasma Spraying. Crystals 2020, 10, 984. https://doi.org/10.3390/cryst10110984
Tao S, Yang J, Zhai M, Shao F, Zhong X, Zhao H, Zhuang Y, Ni J, Li W, Tao S. Thermal Stability of YSZ Thick Thermal Barrier Coatings Deposited by Suspension and Atmospheric Plasma Spraying. Crystals. 2020; 10(11):984. https://doi.org/10.3390/cryst10110984
Chicago/Turabian StyleTao, Shiqian, Jiasheng Yang, Minglong Zhai, Fang Shao, Xinghua Zhong, Huayu Zhao, Yin Zhuang, Jinxing Ni, Wei Li, and Shunyan Tao. 2020. "Thermal Stability of YSZ Thick Thermal Barrier Coatings Deposited by Suspension and Atmospheric Plasma Spraying" Crystals 10, no. 11: 984. https://doi.org/10.3390/cryst10110984
APA StyleTao, S., Yang, J., Zhai, M., Shao, F., Zhong, X., Zhao, H., Zhuang, Y., Ni, J., Li, W., & Tao, S. (2020). Thermal Stability of YSZ Thick Thermal Barrier Coatings Deposited by Suspension and Atmospheric Plasma Spraying. Crystals, 10(11), 984. https://doi.org/10.3390/cryst10110984