Takayuki Ozeki
Central Research Institute of Electric Power Industry
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Publication
Featured researches published by Takayuki Ozeki.
Volume 4: Ceramics; Concentrating Solar Power Plants; Controls, Diagnostics and Instrumentation; Education; Electric Power; Fans and Blowers | 2013
Takayuki Ozeki; Tomoharu Fujii; Eiji Sakai; Tetsuo Fukuchi; Norikazu Fuse
In order to improve the efficiency of electric power generation with gas turbines, the turbine inlet gas temperature needs to be increased. Hence, it is necessary to apply thermal barrier coatings (TBCs) to various hot gas path components. Although TBCs protect the substrate of hot gas path components from high-temperature gas, their thermal resistance degrades over time because of erosion and sintering of the topcoat. When the thermal resistance of TBCs degrades, the surface temperature of the substrate becomes higher, and this temperature increase affects the durability of the hot gas path components. Therefore, to understand the performance of serviced TBCs, the thermal resistance of TBCs needs to be examined by the nondestructive testing (NDT) method. This method has already been reported for TBCs applied to a combustion liner. However, recently, TBCs have been applied to gas turbine blades that have complex three-dimensional shapes, and therefore, an NDT method for examining the thermal resistance of TBCs on blades was developed. This method is based on active thermography using carbon dioxide laser heating and surface temperature measurement of the topcoat by using an infrared camera. The thermal resistance of TBCs is calculated from the topcoat surface temperature when the laser beam heats the surface. In this study, the developed method was applied to a cylindrical TBC sample that simulated curvature on the suction side of a blade, and the results showed the appropriate laser heating condition for this method. Under the appropriate condition, this method could also examine the thermal resistance of TBCs present at 70% of the height of the blade. With these results, this method could determine the thermal resistance within an error range of 4%, as compared to destructive testing.Copyright
Electrical Engineering in Japan | 2014
Tetsuo Fukuchi; Norikazu Fuse; Mitsutoshi Okada; Takayuki Ozeki; Tomoharu Fujii; Maya Mizuno; Kaori Fukunaga
Ieej Transactions on Fundamentals and Materials | 2013
Tetsuo Fukuchi; Norikazu Fuse; Mitsutoshi Okada; Takayuki Ozeki; Tomoharu Fujii; Maya Mizuno; Kaori Fukunaga
Ieej Transactions on Electrical and Electronic Engineering | 2016
Tetsuo Fukuchi; Takayuki Ozeki; Mitsutoshi Okada; Tomoharu Fujii
ASME Turbo Expo 2016: Turbomachinery Technical Conference and Exposition | 2016
Mitsutoshi Okada; Toshihiko Takahashi; Susumu Yamada; Takayuki Ozeki; Tomoharu Fujii
The Proceedings of the International Conference on Power Engineering (ICOPE) 2015.12 | 2015
Takayuki Ozeki; Eiji Sakai; Tomoharu Fujii; Toshihiko Takahashi; Mitsutoshi Okada; Tetsuo Fukuchi; Akira Morita
Transactions of the Japan Society of Mechanical Engineers. B | 2013
Takayuki Ozeki; Takao Nakagaki
The Proceedings of the National Symposium on Power and Energy Systems | 2012
Takayuki Ozeki; Tomoharu Fujii; Eiji Sakai; Tetsuo Fukuchi; Norikazu Fuse
The Proceedings of Mechanical Engineering Congress, Japan | 2012
Takayuki Ozeki; Tomoharu Fujii; Eiji Sakai; Tetsuo Fukuchi; Norikazu Fuse
The Proceedings of the National Symposium on Power and Energy Systems | 2011
Takayuki Ozeki; Shoichiro Hiki; Haruka Ito; Takao Nakagaki
Collaboration
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National Institute of Information and Communications Technology
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