Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
1566925 | Journal of Nuclear Materials | 2011 | 4 Pages |
Abstract
The stress influence on the defect production rate and size distribution of defect clusters in cascades was evaluated by molecular dynamics method. Stress was applied by exerting uni-axial, hydrostatic and isometric strain into the cell. For the uni-axial case, strain was varied between â1% and 1%. Defect production rate in cascade increased significantly under uni-axial tensile stress, and even under uni-axial compressive one. The largest increase of defect production rate was observed under isometric strain, and not so much under hydrostatic one. These results indicate that deformation anisotropy is a key factor to increase defect production rate. It was also found that larger defect clusters were formed under the strain condition in which defect production rate is higher.
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Authors
S. Miyashiro, S. Fujita, T. Okita,