Discrete dislocation plasticity modeling of hydrides in zirconium under thermal cycling
File(s)Patel-Waheed-MRSAdvances-2017.pdf (3.58 MB)
Accepted version
Author(s)
Patel, M
Waheed, S
Wenman, MR
Sutton, AP
Balint, DS
Type
Journal Article
Abstract
Understanding the ratcheting effect of hydrogen and hydride accumulation in response to thermal cycling is important in establishing a failure criterion for zirconium alloy nuclear fuel cladding. We propose a simple discrete dislocation plasticity model to study the evolution of the dislocation content that arises as a micro-hydride repeatedly precipitates and dissolves over a series of thermal cycles. With each progressive thermal cycle, we find a steady growth in the residual dislocation density in the vicinity of the hydride nucleation site; this corresponds to a gradual increase in the hydrogen concentration and, consequently, the hydride population. The simulated ratcheting in the dislocation density is consistent with experimental observations concerning the hysteresis in the terminal solid solubility of hydrogen in zirconium, which can be correlated to the plastic relaxation of hydrides.
Date Issued
2017-06-19
Date Acceptance
2017-06-13
Citation
MRS Advances, 2017, 2 (55), pp.3353-3358
ISSN
2059-8521
Publisher
Cambridge University Press
Start Page
3353
End Page
3358
Journal / Book Title
MRS Advances
Volume
2
Issue
55
Copyright Statement
© Materials Research Society 2017. This paper has been accepted for publication and will appear in a revised form, subsequent to peer-review and/or editorial input by Cambridge University Press.
Sponsor
Engineering and Physical Sciences Research Council
Grant Number
EP/L015579/1
Subjects
Science & Technology
Technology
Materials Science, Multidisciplinary
Materials Science
Publication Status
Published