Interdiffusion between Ni Based Superalloy and Diffusion Barrier Coatings at 1423K

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Abstract:

A diffusion couple study was carried out with Ni-based superalloy / γ’-Ni3Al with or without a Re-based alloy layer. The Re-based alloy containing Re, W, Cr, and Ni was formed on a second generation, single crystal Ni-based superalloy by using electroplating processes to form films of 70at%Re-Ni and Ni-20at%W, followed by Cr-pack cementation at 1573K for 36ks. The superalloy with or without the Re-based alloy layer was bonded to a γ’−Ni3Al alloy in vacuum. Diffusion couples were annealed in an evacuated quartz ampoule at 1423 K for 90 and 360ks. After the 360ks diffusion treatment the Re-based alloy remained sound and suppressed inward Al diffusion from the γ’-Ni3Al, it was further found that outward diffusion of alloying elements from the alloy substrate to the γ’-Ni3Al was also significantly reduced by the Re-based alloy layer.

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Periodical:

Materials Science Forum (Volumes 522-523)

Pages:

285-292

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Online since:

August 2006

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[1] H. Harada and T. Yokokawa: Materia 42 (9), 621-625, (2003) (Japanese).

Google Scholar

[2] P. Elliott and A. F. Hampton: Oxidation of Metals 14 449-468, (1979).

Google Scholar

[3] Sherwin W. Yang: Oxidation of Metals 14 375-397 (1980).

Google Scholar

[4] T. Narita: Journal of High Temperature Society 28(4) 135-143, (2002) (Japanese).

Google Scholar

[5] W. Huang and Y. A. Chang: Materials Science and Engineering A259, 110-119, (1999).

Google Scholar

[6] S. Narita: Unpublished data, cited in Master Thesis of Hokkaido University (2003).

Google Scholar

[7] D. Yoshida and T. Narita: 43(1) 79-88, Report of The 123 High Temperature Materials, Japanese Society. Promotion of Science, vol. 43 No. 1 79-88 (Japanese).

Google Scholar

[8] F. Wu, H. Murakami, and A. Suzuki: Surface and Coatings Technology�168, 62-69, (2003).

Google Scholar

[9] C. S. Lin, R. A. Rapp and J. P. Hirth: Metallurgical Transactions A 17A, 933-944, (1986).

Google Scholar

[10] Y. Shueh, J. P. Hirth and R. A. Rapp: Metallurgical Transactions A 22A, 1501-1510, (1991).

Google Scholar

[11] M. Shoji, Y. Hisamatsu, S. Hayashi, and T. Narita: Report of the 123 High temperature Materials, Japanese Society. Promotion of Science, 41(1) 127-134 (Japanese).

Google Scholar

[12] Y. Matsumura, M. Fukumoto, S. Hayashi, A. Kasama, I. Iwanaga, R. Tanaka, and T. Narita: Oxidation of Metals, 61, 105-124, (2004).

DOI: 10.1023/b:oxid.0000016279.88052.d9

Google Scholar

[13] H. Matsumaru: Unpublished data, cited in Graduation Thesis of Hokkaido University (2004).

Google Scholar

[14] S. Narita, T. Izumi, T. Nishimoto, S. Hayashi, and T. Narita: to be published.

Google Scholar