Analytic examination of mechanism for compressive residual stress introduction with low plastic strain using peening
Author:
Affiliation:
1. Center for Technology Innovation - Materials, Research & Development Group, Hitachi, Ltd.
2. Hitachi-GE Nuclear Energy, Ltd.
Publisher
Japan Society of Mechanical Engineers
Subject
General Medicine
Link
https://www.jstage.jst.go.jp/article/mej/3/6/3_16-00300/_pdf
Reference18 articles.
1. Angeliu, T. M., Andresen, P. L., Hall, E., Sutliff, J. A., Sitzman S., and Horn, R. M., Intergranular stress corrosion cracking of unsensitized stainless steels in BWR environments, Proceedings of 9th International Conference on Environmental Degradation of Materials in Nuclear Power Systems - Water Reactors, TMS, (1999), pp. 311-317.
2. Fujikawa, S. and Akamatsu, T., The dynamic behaviours of cavitation babbles and the impulsive pressures, Transactions of the Japan Society of Mechanical Engineers. B, Vol. 50, No. 450, (1984), pp. 293-299 (in Japanese).
3. Hirayama, H., Otake, A., and Tsukamoto, M., Effect of strain-rate on mechanical properties of carbon steel (JIS SM50) and strainless steel (JIS SUS304), Summaries of technical papers of Annual Meeting Architectural Institute of Japan. Structures II, (1989), pp.1077-1078 (in Japanese).
4. Ishibashi, R., Hato, H., and Yoshikubo, F., Mechanism of compressive residual stress introduction on surfaces of metal materials by water-jet peening, Proceedings of ASME 2010 Pressure Vessels and Piping Division/K-PVP Conference, Paper No. PVP2010-25175 (2010), pp. 801-813.
5. Kamaya, M., Wilkinson, A. J., and Titchmarsh J. M., Quantification of plastic strain of stainless steel and nickel alloy by electron backscatter diffraction, Acta Materialia, Vol. 54, No. 2, (2006), pp. 539-548.
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