Hostname: page-component-76fb5796d-qxdb6 Total loading time: 0 Render date: 2024-04-25T08:06:51.740Z Has data issue: false hasContentIssue false

Heavy Ion Irradiation-induced Microstructural Evolution in the Next Generation Nuclear Material – Alloy 800H

Published online by Cambridge University Press:  25 July 2016

J. J. H. Lim
Affiliation:
Material Performance Centre, School of Materials, University of Manchester, Manchester, UK
M. G. Burke
Affiliation:
Material Performance Centre, School of Materials, University of Manchester, Manchester, UK

Abstract

Image of the first page of this content. For PDF version, please use the ‘Save PDF’ preceeding this image.'
Type
Abstract
Copyright
© Microscopy Society of America 2016 

References

[1] U.S. DOE Nuclear Energy Research Advisory Committee and the Generation IV International Forum, A Technology Roadmap for Generation IV Nuclear Energy Systems 2002.Google Scholar
[2] The OECD Nuclear Energy Agency for the Gen IV International Forum, Technology Roadmap Update for Generation IV Nuclear Energy Systems 2014.Google Scholar
[3] Natesan, K., Purohit, A., Tam, S.W. & Greene, C.A. (2003). “Materials Behavior in HTGR Environments,” ANL-02/37 and NUREG/CR-6824.Google Scholar
[4] Garner, F.A. & Kumar, A.S. in: Radition-Induced Changes in Microstructure: 13th International Symposium (part I), in: F.A. Garner, N.H. Packan, A.S. Kumar (Eds.), ASTM STP, 955, ASTM, Philadelphia 1987). p. 289.Google Scholar
[5] Gan, J. & Hilton, B.A. (2007). “TEM Examination of Advanced Alloys Irradiated in ATR”, IN/EXT-07-13306.Google Scholar