Hostname: page-component-8448b6f56d-gtxcr Total loading time: 0 Render date: 2024-04-20T01:32:55.938Z Has data issue: false hasContentIssue false

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
Get access

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

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

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