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Determination of the Coherency Strain of γ and γ′ Phases in Nickel-Base Superalloys at High Temperatures

Published online by Cambridge University Press:  06 March 2019

Katsumi Ohno
Affiliation:
National Research Institute for Metals 2-3-12, Nakameguro, Meguro-ku, Tokyo 153, Japan
Tadaharu Yokokawa
Affiliation:
National Research Institute for Metals 2-3-12, Nakameguro, Meguro-ku, Tokyo 153, Japan
Toshihiro Yamagata
Affiliation:
National Research Institute for Metals 2-3-12, Nakameguro, Meguro-ku, Tokyo 153, Japan
Hiroshi Harada
Affiliation:
Research Development Corporation of Japan 2-5-2, Nagata-cho, Chiyoda-ku, Tokyo 100, Japan
Michio Yamazaki
Affiliation:
Research Development Corporation of Japan 2-5-2, Nagata-cho, Chiyoda-ku, Tokyo 100, Japan
Kazumasa Ohsumi
Affiliation:
National Laboratory for High Energy Physics 1-1 Oho, Tsukuba-shi, Ibaragi-ken 305, Japan
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Abstract

A method for using syncrotoron-radiation parallel-beam X-ray diffractometry for precise lattice parameters and strains of γ-γ′ type Nickel base superalloys at elevated temperature is described. The superalloys have γ′ precipitates which are an ordered L12 structure based on Ni3Al, in y-matrices having a disordered FCC structure. Lattice misfit between γ and γ′ phases was very small and peaks reflected from γ and γ′ phases made unresolved clusters of peaks.

Profile fitting with a pseudo-Voigt function is used to resolve overlapping peaks. Instrumental broadening of the peak profile was removed using a deconvolution method. The standard errors of the calculated peak angle were less than 0.002°. The elastic strain of the γ′ precipitates in the alloys were smaller than those of γ-matrices.

Type
IX. Stress and Strain Determination by Diffraction Methods, Peak Broadening Analysis
Copyright
Copyright © International Centre for Diffraction Data 1992

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References

[1] Harada, H., Yamagata, T., Nakazawa, S., Ohno, K. and Yamazaki, M., Proc. of a conference, “High Temperature Materials for Power Engineering 1990, p.1319, held in Liege, Bergium, Sept. 24, 1990.Google Scholar
[2] Harada, H., Ohno, K., Yamagata, T. and Yamazaki, M., Superalloys 88, p. 733, (1988).Google Scholar
[3] Ohno, K., Yamazaki, M., Adv. in X-ray Anal., 30:67, (1987).Google Scholar
[4] Ohno, K., Harada, H., Yamagata, T. and Yamazaki, M., Tran. ISIJ, 28:218, (1988).Google Scholar
[5] Uno, B., Ozawa, H., Horikawa, H., Ando, M., Ohsumi, K., Nukui, A., Yukino, K. and Kawasaki, T., Aust. J. Phys., 41:133-44, (1988).Google Scholar
[6] Ohno, K., Harada, H., Yamagata, T., Yamazaki, M. and Ohsumi, K., Adv. in X-Ray Anal., 32:357, (1989).Google Scholar
[7] Ohno, K., Harada, H., Yamagata, T., Yamazaki, M. and Ohsumi, K., Adv. in X-Ray Anal., 32:357, (1989).Google Scholar
[81 Parrish, W., Huang, T. C., Ayers, G. L., Trans. Am. Cryst. Assc, 12:55,(1976).Google Scholar
[9] Toraya, H., J. Appl. Cryst., 19:440, (1986).Google Scholar