## Abstract The thermal conductivity of electronβbeam physical vapor deposited (EBβPVD) thermal barrier coatings (TBCs) was investigated by the Laser Flash technique. Sample type and methodology of data analyses as well as atmosphere during the measurement have some influence on the data. A large v
Evolution of thermal properties of EB-PVD 7YSZ thermal barrier coatings with thermal cycling
β Scribed by Tyler R. Kakuda; Andi M. Limarga; Ted D. Bennett; David R. Clarke
- Publisher
- Elsevier Science
- Year
- 2009
- Tongue
- English
- Weight
- 887 KB
- Volume
- 57
- Category
- Article
- ISSN
- 1359-6454
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β¦ Synopsis
During high-temperature exposure, the microstructure of thermal barrier coatings evolves, leading to increased thermal conductivity. We describe the evolution in the thermal properties of a 7 wt.% Y 2 O 3 stabilized ZrO 2 electron beam-physical vapor deposited (EB-PVD) thermal barrier coating with thermal cycling between room temperature and 1150 Β°C until failure. The thermal diffusivity and conductivity of the coating were evaluated non-destructively based on the analysis of its photothermal infrared emission. Although the coating density does not increase significantly with thermal cycling, the thermal diffusivity and conductivity of the coating increased substantially, particularly during the first 20 1 h cycles. The values then approach a limiting value. Complementary Raman spectroscopy suggests that the increase is accompanied by a reduction in the defect concentration in the coating and that there is also a correlation between the width of the Raman lines and the thermal conductivity.
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## Abstract The electronβbeam physical vapor deposition (EBβPVD) process provides distinctive coatings of a unique columnar microstructure for gas turbine components. Main advantage of this structure is superior tolerance against straining, erosion and thermoshock, thus giving it a major edge in li