Plastic deformation mechanism of γ-phase U–Mo alloy studied by molecular dynamics simulations

被引:0
|
作者
王畅
彭芃
赖文生
机构
[1] TheKeyLaboratoryofAdvancedMaterials(MOE),SchoolofMaterialsScienceandEngineering,TsinghuaUniversity
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暂无
中图分类号
TG146.8 [放射性金属及其合金];
学科分类号
摘要
Uranium–molybdenum(U–Mo) alloys are critical for nuclear power generation and propulsion because of their superior thermal conductivity, irradiation stability, and anti-swelling properties. This study explores the plastic deformation mechanisms of γ-phase U–Mo alloys using molecular dynamics(MD) simulations. In the slip model, the generalized stacking fault energy(GSFE) and the modified Peierls–Nabarro(P–N) model are used to determine the competitive relationships among different slip systems. In the twinning model, the generalized plane fault energy(GPFE) is assessed to evaluate the competition between slip and twinning. The findings reveal that among the three slip systems, the {110}<111>slip system is preferentially activated, while in the {112}<111> system, twinning is favored over slip, as confirmed by MD tensile simulations conducted in various directions. Additionally, the impact of Mo content on deformation behavior is emphasized. Insights are provided for optimizing process conditions to avoid γ → α′′ transitions, thereby maintaining a higher proportion of γ-phase U–Mo alloys for practical applications.
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页码:472 / 479
页数:8
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