## 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
EB-PVD process and thermal properties of hafnia-based thermal barrier coating
β Scribed by Kazuhide Matsumoto; Yoshiyasu Itoh; Tsuneji Kameda
- Publisher
- Institute of Physics and National Institute of Materials Science
- Year
- 2003
- Tongue
- English
- Weight
- 532 KB
- Volume
- 4
- Category
- Article
- ISSN
- 1468-6996
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β¦ Synopsis
Thermal barrier coatings (TBCs) are being developed for the key technology of gas turbine and diesel engine applications. In general, 8 mass% Y 2 O 3 -ZrO 2 (8YSZ) coating materials are used as the top coating of TBCs. The development of hafnia-based TBC was started in order to realize the high reliability and durability in comparison with 8YSZ, and the 7.5 mass% Y 2 O 3 -HfO 2 (7.5YSH) was selected for coating material. By the investigation of electron-beam physical vapor deposition (EB-PVD) process using 7.5YSH ceramic ingot, 7.5YSH top coating with about 200 mm thickness could be formed. The microstructure of the 7.5YSH coated at coating temperature of 850 8C showed columnars of laminated thin crystals. On the other hand, the structure of the 7.5YSH coated at coating temperature of 950 8C showed solid columnars. From the result of sintering behavior obtained by heating test of 7.5YSH coating, it was recognized that the thermal durability of 7.5YSH coating was improved up to about 100 8C in comparison with 8YSZ coating. This tendency was confirmed by the experimental result of the thermal expansion characteristics of sintered 7.5YSH and 8YSZ.
π SIMILAR VOLUMES
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 t
where his activities concentrated on weldable Ti alloys and advanced Al alloys. 1982 he joined DLR's Institute of Materials Research in KΓΆln, where he worked as group leader on AlΒ±Li alloys and high temperature titanium alloys. 1988 he became section head ΒͺLight Metals and CoatingsΒΊ. Presently he is