English

Model-based quantitative methods to predict irradiation-induced swelling in alloys

Materials Science 2022-01-14 v1 Nuclear Theory Applied Physics

Abstract

Predicting volume swelling of structural materials in nuclear reactors under high-dose neutron irradiations based on existing low-dose experiments or irradiation data with high-dose-rate energetic particles has been a long-standing challenge for safety evaluation and rapidly screening irradiation-resistant materials in nuclear energy systems. Here, we build an Additional Defect Absorption Model that describes the irradiation-induced swelling effects produced by energetic electrons, heavy-ions, and neutrons by considering additional defect sinks inherent in the irradiation process. Based on this model, we establish quantitative methods to predict high-dose swelling from low-dose behavior and obtain the equivalent irradiation dose for different energetic particles when the dose rates differ by several orders of magnitude. Furthermore, we propose a universal parameter to characterize the swelling resistance of various alloys and predict their radiation tolerances under different radiation conditions. This work provides quantitative prediction methods for evaluating irradiation-induced swelling effects of structural materials, which is critical to the safety and material development for advanced nuclear reactors.

Keywords

Cite

@article{arxiv.2201.04958,
  title  = {Model-based quantitative methods to predict irradiation-induced swelling in alloys},
  author = {Wei Ge and Shijun Zhao and Chenxu Wang and Haocheng Liu and Yue Su and Jia Huang and Zhiying Gao and Jianming Xue and Steven J. Zinkle and Yugang Wang},
  journal= {arXiv preprint arXiv:2201.04958},
  year   = {2022}
}

Comments

23 pages, 8 figures

R2 v1 2026-06-24T08:48:55.272Z