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首页> 外文期刊>Journal of Nuclear Materials: Materials Aspects of Fission and Fusion >Reexamination of a U-Zr diffusion couple experiment using quantitative phase-field modeling and sensitivity analysis
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Reexamination of a U-Zr diffusion couple experiment using quantitative phase-field modeling and sensitivity analysis

机译:使用定量相位场建模和敏感性分析来重新审视U-ZR扩散耦合实验

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摘要

Interest in U-Zr metallic nuclear fuels has been on the rise, but sparsity in the available diffusion data continues to hinder efforts to model irradiation behaviors like constituent redistribution. In the current work, we develop a quantitative phase-field model for the influential beta and gamma phases of U-Zr and use it to reexamine data from a published diffusion couple experiment. We optimize the two phases' kinetic parameters and use annealing simulations to show that the optimized model produces more accurate predictions than those obtained using the diffusion parameters currently employed by constituent redistribution models. We then demonstrate how to minimize the impact of user-defined model parameters such that the parameters based on experimental data dominate the model's response. Sensitivity analysis studies confirmed that the phases' kinetic parameters are more influential than the interface energy for this type of problem, and gamma phase kinetics were found to be more impactful than beta phase kinetics. This observation is believed to be related to differences in phases' solubility ranges and diffusion-limiting behaviors. These findings and the interpretive modeling technique employed in the current work will increase the efficiency of the data collection efforts necessary to reduce uncertainties in U-Zr diffusion parameters, expediting further fuel development. (C) 2019 Elsevier B.V. All rights reserved.
机译:对U-ZR金属核燃料的兴趣已经上升,但可用扩散数据的稀疏性继续妨碍努力模拟组成重新分布等辐照行为。在当前的工作中,我们为U-ZR的有影响力β和γ阶段开发了定量的相位场模型,并使用它来从公开的扩散夫妇实验中重新审视数据。我们优化了两个阶段的动力学参数,并使用退火模拟,以表明优化模型比使用当前由组成再分配模型采用的扩散参数获得的更准确的预测。然后,我们演示如何最大限度地减少用户定义的模型参数的影响,使得基于实验数据的参数主导模型的响应。敏感性分析研究证实,相动力学参数比对这类问题的界面能更有影响力,并发现γ相动力学比β相动力学更具冲击力。认为这种观察结果与阶段的溶解度范围和扩散限制行为的差异有关。这些发现和当前工作中采用的解释建模技术将提高数据收集效率的效率,以减少U-ZR扩散参数中的不确定性,加速进一步的燃料开发。 (c)2019 Elsevier B.v.保留所有权利。

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