Coating Life Prediction Under Cyclic Oxidation Conditions
Author:
Affiliation:
1. EPRI Materials Center for Combustion Turbines, Southwest Research Institute, 6220 Culebra Road, P. O. Drawer 28510, San Antonio, TX 78228-0510
Abstract
Publisher
ASME International
Subject
Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering
Link
http://asmedigitalcollection.asme.org/gasturbinespower/article-pdf/120/3/609/5889540/609_1.pdf
Reference10 articles.
1. Chan K. S. , 1997, “A Mechanics-Based Approach to Cyclic Oxidation,” Met. Mat. Transactions A, Vol. 28A, pp. 411–422.
2. Lee E. Y. , CharterD. M., BiedermanR. R., and SissonR. D., 1987, “Modeling the Microstructural Evolution and Degradation of M-Cr-AL-Y Coatings During High Temperature Oxidation,” Surface and Coatings Technology, Vol. 32, pp. 19–39.
3. Lowell C. E. , BarrettC. A., PalmerR. W., AupingJ. V., and ProbstH. B., 1991, “COSP: A Computer Model of Cyclic Oxidation,” Oxidation of Metals, Vol. 36, No. 1/2, pp. 81–112.
4. Nesbitt, J. A., 1989, “Diffusional Aspects of the High-Temperature Oxidation of Protective Coatings,” Diffusion Analysis & Applications, A. D. Romig, Jr., and M. A. Dayananda, eds., TMS, Warrendale, PA. pp. 307–324.
5. Nesbitt J. A. , 1989, “Predicting Minimum Aluminum Concentrations for Protective Scale Formation on Ni-base Alloys,” Journal of Electrochemical Society, Vol. 136, pp. 1518–1527.
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