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FUEL-COOLANT INTERACTION ANALYSIS FOR CORIUM MOLTEN MATERIALS

机译:碳化材料的燃料冷却剂相互作用分析

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The Fukushima accident suggested that molten fuel may have quenched in residual water in-vessel and/or likely ex-vessel from molten fuel-coolant interactions (FCI) mixing and quenching. To better understand such behavior, we have developed a molten fuel breakup model that considers solidification effects and we apply it to corium molten fuel mixing with water using the TEXAS FCI model. FCI phenomena with molten corium materials have been observed to be less energetic than predicted and we hypothesize this is due to local solidification effects. We consider the effect of a solid crust layer during fuel-coolant mixing in this model. This solidification model predicts the transient temperature profile and crust layer thickness of the fuel particle by solving the heat conduction equation for each Lagrangian fuel particle. This fuel particle breakup model and transient temperature profile model were incorporated into the TEXAS FCI model; so called TEXAS- Ⅵ model. This revised TEXAS FCI model was compared to the FARO L14 experiment (ISP-39) where fuel-coolant mixing and quench data have been published. The L14 pressure history, liquid water pool temperature, and vapor temperature were found to be in good agreement with the revised model predictions. This mixing behavior will also have an impact on FCI explosion energetics.
机译:福岛事故表明,熔炼燃料可以在残余水中和/或来自熔融燃料 - 冷却剂相互作用(FCI)混合和淬火的容器中的可能导管中淬灭。为了更好地了解这种行为,我们开发了一种熔化的燃料分手模型,其考虑了使用德克萨斯FCI模型与水熔炼燃料混合的核燃料混合。已经观察到具有熔融芯材的FCI现象比预期的能量更少,并且我们假设这是由于局部凝固效果。我们考虑在该模型中燃料冷却剂混合过程中的固体壳层的效果。该凝固模型通过求解每个拉格朗日燃料颗粒的导热方程来预测燃料颗粒的瞬态温度曲线和外壳层厚度。该燃料颗粒分类模型和瞬态温度曲线模型纳入德克萨斯州FCI模型;所以称为德克萨斯州模型。将该修订的德克萨斯州FCI模型与FARO L14实验(ISP-39)进行了比较,其中发布了燃料冷却剂混合和淬火数据。 L14压力历史,液态水池温度和蒸汽温度与修订的模型预测有关。这种混合行为也会对FCI爆炸能量有影响。

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