We use cookies to distinguish you from other users and to provide you with a better experience on our websites. Close this message to accept cookies or find out how to manage your cookie settings.
An abstract is not available for this content so a preview has been provided. As you have access to this content, a full PDF is available via the ‘Save PDF’ action button.
Type
Emerging Methods for Characterizing Hydrogen Effects in Metals and Alloys
Couet, A., Motta, A. T., and Comstock, R. J., “Hydrogen pickup measurements in zirconium alloys: Relation to oxidation kinetics,” J. Nucl. Mater., vol. 451, no. 1–3, pp. 1–13, Aug. 2014.CrossRefGoogle Scholar
[2]
B. Ensor et al., “The role of hydrogen in zirconium alloy corrosion,” J. Nucl. Mater., vol. 496, pp. 301–312, Sep. 2017.CrossRefGoogle Scholar
[3]
Motta, A. T. et al. , “Hydrogen in zirconium alloys: A review,” J. Nucl. Mater., vol. 518, pp. 440–460, Mar. 2019.CrossRefGoogle Scholar
[4]
Chen, Y. S. et al. , “Observation of hydrogen trapping at dislocations, grain boundaries, and precipitates,” Science (80-.)., vol. 367, no. 6474, pp. 171–175, Jan. 2020.CrossRefGoogle Scholar
[5]
Breen, A. J. et al. , “Atomic scale analysis of grain boundary deuteride growth front in Zircaloy-4,” Scr. Mater., vol. 156, pp. 42–46, 2018.CrossRefGoogle Scholar
[6]
Thompson, K. et al. , “In situ site-specific specimen preparation for atom probe tomography,” Ultramicroscopy, vol. 107, no. 2–3, pp. 131–139, Feb. 2007.CrossRefGoogle Scholar
[7]
RAlani, . and Jackman, J. A., “In Situ Hydride Formation in Zirconium and Titanium during Ion Milling,” Microsc. Microanal., vol. 1, no. 4, pp. 175–184, Aug. 1995.Google Scholar
[8]
Hanlon, S. M. et al. , “A solution to FIB induced artefact hydrides in Zr alloys,” J. Nucl. Mater., vol. 515, pp. 122–134, Mar. 2019.CrossRefGoogle Scholar