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Development of a multiscale thermal conductivity model for fission gas in UO2

机译:UO2中裂变气体的多尺度热导模型的开发

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摘要

Accurately predicting changes in the thermal conductivity of light water reactor UO2 fuel throughout its lifetime in reactor is an essential part of fuel performance modeling. However, typical thermal conductivity models from the literature are empirical. In this work, we begin to develop a mechanistic thermal conductivity model by focusing on the impact of gaseous fission products, which is coupled to swelling and fission gas release. The impact of additional defects and fission products will be added in future work. The model is developed using a combination of atomistic and mesoscale simulation, as well as analytical models. The impact of dispersed fission gas atoms is quantified using molecular dynamics simulations corrected to account for phonon-spin scattering. The impact of intragranular bubbles is accounted for using an analytical model that considers phonon scattering. The impact of grain boundary bubbles is determined using a simple model with five thermal resistors that are parameterized by comparing to 3D mesoscale heat conduction results. When used in the BISON fuel performance code to model four reactor experiments, it produces reasonable predictions without having been fit to fuel thermocouple data. Published by Elsevier B.V.
机译:准确预测轻水反应堆UO2燃料在其整个生命周期中的热导率变化是燃料性能建模的重要组成部分。但是,文献中的典型热导率模型是经验性的。在这项工作中,我们开始通过关注气态裂变产物的影响来建立机械热导率模型,这与膨胀和裂变气体的释放有关。其他缺陷和裂变产物的影响将在以后的工作中增加。该模型是使用原子模拟和中尺度模拟以及分析模型的组合开发的。分散的裂变气体原子的影响通过使用分子动力学模拟进行了量化,该分子模拟被校正以解释声子-自旋散射。使用考虑声子散射的分析模型解释了颗粒内气泡的影响。晶界气泡的影响是使用具有五个热敏电阻的简单模型确定的,该电阻通过与3D中尺度热传导结果进行比较来进行参数化。当在BISON燃料性能代码中用于对四个反应堆实验进行建模时,它可以在不适合燃料热电偶数据的情况下产生合理的预测。由Elsevier B.V.发布

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