Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
6761852 | Nuclear Engineering and Design | 2014 | 7 Pages |
Abstract
The quantitative prediction of stress corrosion cracking (SCC) of structure materials is essential in safety assessment of nuclear power plants. A new quantitative prediction model is proposed by combining the Ford-Andresen model, a crack tip creep model and an elastic-plastic finite element method. The creep at the crack tip is considered to be the primary mechanical factor of protective film degradation, and the creep strain rate at the crack tip is suggested as primary mechanical factor in predicting the SCC rate. The SCC rates at secondary stage of creep are recommended when using the approach introduced in this study to predict the SCC rates of materials in high temperature water. The proposed approach can be used to understand the SCC crack growth in structural materials of light water reactors.
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Authors
F.Q. Yang, H. Xue, L.Y. Zhao, X.R. Fang,