Hostname: page-component-76fb5796d-skm99 Total loading time: 0 Render date: 2024-04-27T03:56:09.350Z Has data issue: false hasContentIssue false

X-Ray Stress Measurement of Alloy Steels X-Ray Study of Elastic Deformation for Alloy Steels with Composite Microstructures

Published online by Cambridge University Press:  06 March 2019

Masaaki Tsuda
Affiliation:
Department of Materials Science and Engineering Kanazawa University, Kakurna, Kanazawa 920-11, Japan
Tokimasa Goto
Affiliation:
Department of Materials Science and Engineering Kanazawa University, Kakurna, Kanazawa 920-11, Japan
Toshihiko Sasaki
Affiliation:
Department of Materials Science and Engineering Kanazawa University, Kakurna, Kanazawa 920-11, Japan
Yukio Hirose
Affiliation:
Department of Materials Science and Engineering Kanazawa University, Kakurna, Kanazawa 920-11, Japan
Get access

Extract

Residual stress is inevitably introduced into composites because of the mismatch of the coefficient of thermal expansion, and it is different for each phase. The x-ray method can detect separately the stress in each phase, so will yield useful information for analyzing the toughening mechanisms of composites.

Type
Research Article
Copyright
Copyright © International Centre for Diffraction Data 1993

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. Predecki, P., Abuhasan, A. and Barrett, C. S., Residual Stress Determination in Al2O3/SiC (Whisker) Composites by X-Ray Diffraction, 1988, Advances in X-Ray Analysis. Vol. 31, 231, U.S.A.Google Scholar
2. Cohen, J. B., The Measurement of Stresses in Composites, 1986, Powder Diffraction. Vol. 1, No. 2, 15, U.S.A.Google Scholar
3. Noyan, I. C. and Cohen, J. B., An X-Ray Diffraction Study of the Residual Stress-Strain Distributions in Shot-peened Two-phase Brass, 1985, Mat. Sci. and Eng. 75, 179, U.S.A.Google Scholar
4. Sasaki, T., Hirose, Y., A New Possibility of the Technique of the X-Ray Stress Measurement, 1993, Proceedings of the 30th Workshop on X-Ray Studies of Mechanical Behavior of Materials. Kanazawa, Japan,Google Scholar
5. Tsuda, M., Hirose, Y., Yajima, Z. and Tanaka, K., Measurement of Stress Constant of Quenched and Tempered Alloy Steel, 1992, Proceedings of the 28th Symposium on X-Ray Studies on Mechanical Behavior of Materials. Kyoto, Japan.Google Scholar
6. Tanaka, K., Mine, N. and Suzuki, K., X-Ray Study on Elastic Deformation of Zirconia-Alumina Composite, 1990, Journal of the Society of Materials Science. Vol. 44, No. 444, 1235, Japan,Google Scholar
7. Boo, M., Oh, S., Takano, N., Kishi, Y. and Hirose, Y., X-Ray Stress Measurement of WC-Co Alloy, 1993, The Proceedings of the Third International Offshore and Polar Engineering Conference, Vol, IV, Singapore,Google Scholar
8. Miyagawa, H., Oyama, S., Oda, A., X-Ray Stress Measurement of Two-Phase Steel, 1980, Journal of the Society of Materials Science. Vol. 30, No, 330, pp. 222, Japan,Google Scholar
9. Tanaka, K., Yamamoto, Y., Suzuki, K. and Awamura, T., Elastic Constants of Zirconia-Alumina Composite Ceramics for X-Ray Stress Measurement, 1989, Journal of the Society of Materials Science. Vol. 38, No. 430, 840, Japan.Google Scholar
10. Kishi, Y., Hirose, Y., Yajima, Z. and Tanaka, K., X-Ray Study on the Fatigue Fracture Surface of Austempered Ductile Cast Iron, 1992, Advances in X-Ray Analysis. Vol. 35, 50, U.S.A.Google Scholar