arXiv · 2603.00867
Stress-driven dynamic evolution of core-shell structured cavities with H and He in BCC-Fe under fusion conditions
Abstract
Understanding the dynamic behavior of microstructures formed under fusion conditions is critical for designing high-performance structural materials for fusion reactors. Under fusion conditions, cavities of core-shell structures are formed due to the interaction between irradiation-induced vacancies and H and He atoms produced via transmutation. In this study, thermodynamic analysis and molecular dynamics simulations are combined to investigate the atomic-scale mechanisms and dynamic response of core-shell cavities formed in BCC-Fe under applied stress/strain fields. The thermodynamic analysis provides both the foundational reference for cavity structures under fusion neutron irradiation and the initial configurations for atomistic simulations. Building on this framework, atomic-scale simulations demonstrate that H and He play a decisive role in the stress-strain response and the evolution of elastic-plastic deformation within the cavities. In core-shell configurations, H atoms serve a function analogous to that in He-filled cavities, synergistically interacting with He to induce cavity deformation under mechanical loading.
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Jin Wang, Fengping Luo, Yiheng Chen, Denghuang Chen, Bowen Zhang, Yuxin Liu, Guangyu Wang, Yunbiao Zhao, Sheng Mao, Mohan Chen, Hong-Bo Zhou, Jianming Xue, Yugang Wang, Chenxu Wang. 2026-03-01. Stress-driven dynamic evolution of core-shell structured cavities with H and He in BCC-Fe under fusion conditions. https://arxiv.org/abs/2603.00867
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