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Effects of chemical composition and dose on microstructure evolution and hardening of neutron-irradiated reactor pressure vessel steels

Authors :
Takeuchi, T.
Kuramoto, A.
Kameda, J.
Toyama, T.
Nagai, Y.
Hasegawa, M.
Ohkubo, T.
Yoshiie, T.
Nishiyama, Y.
Onizawa, K.
Source :
Journal of Nuclear Materials. Jul2010, Vol. 402 Issue 2/3, p93-101. 9p.
Publication Year :
2010

Abstract

Abstract: The correlation of microstructure evolution and hardening was studied in two kinds of A533B-1 steel with high and low levels of Cu irradiated in a range of dose from 0.32 to 9.9×1019 ncm−2 (E >1MeV) under a high flux of about 1.7×1013 ncm−2 s−1 using three-dimensional local electrode atom probe (3DAP), positron annihilation (PA) techniques, and Vickers microhardness. The early rapid hardening was found to be caused by mainly matrix defects such as mono- or di-vacancies (V 1 − V 2) and/or dislocations indicated by the PA analysis. The 3DAP analysis showed that dense dispersion of dilute Cu rich clusters and lean distribution of Mn–Ni–Si rich clusters, whichwereidentified to possess the same dislocation-pinning effectby applying a Russell and Brown model,were responsible for large and small hardening in high- and low-Cu steels irradiated above 0.59×1019 ncm2, respectively. [Copyright &y& Elsevier]

Details

Language :
English
ISSN :
00223115
Volume :
402
Issue :
2/3
Database :
Academic Search Index
Journal :
Journal of Nuclear Materials
Publication Type :
Academic Journal
Accession number :
51923123
Full Text :
https://doi.org/10.1016/j.jnucmat.2010.04.008