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Finding non-classical critical nuclei and minimum energy path of Cu precipitates in Fe-Cu alloys

机译:在Fe-Cu合金中发现Cu沉淀物的非古典关键核和最小能量

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For most steels, the aging-or radiation-induced hardenability of Cu precipitates has been concerned for many years. Experiments show that Fe-Cu alloys undergo aging-or radiation-induced phase separation into Cu-rich precipitates, resulting in property degradation processes. In this work, we developed a model integrating constrained string method and phase-field approaches to investigate the non-classical critical nuclei and minimum energy path of Cu precipitates. The Fe-Cu binary alloy is taken as a model system. The free energies used in the phase-field model are from CALPHAD. The simulation results demonstrated that the formation of Cu stable clusters undergo an energy barrier and the predicted thermodynamic properties of the critical nucleus which are related to temperature and Cu overall concentration, in good agreement with the theoretical calculation as well as experimental observations.
机译:对于大多数钢,Cu沉淀物的衰老或辐射诱导的淬灭性已经关注多年。 实验表明,Fe-Cu合金经历衰老或辐射诱导的相分离成Cu的沉淀物,导致性能降解过程。 在这项工作中,我们开发了一种集成的型号,分析串方法和阶段方法,以研究Cu沉淀物的非经典关键核和最小能量路径。 将Fe-Cu二元合金作为模型系统。 相场模型中使用的自由能来自Calphad。 仿真结果表明,Cu稳定簇的形成经历了与温度和Cu总浓度有关的临界核的能量屏障和预测的热力学性质,与理论计算以及实验观察结果良好。

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