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Evaluation of heat-flux distribution at the?inner?and outer reactor vessel walls under?the?in-vessel retention through external?reactor?vessel cooling condition

机译:通过外部反应器-容器冷却条件在容器内滞留下评估反应堆内部和外部容器壁处的热通量分布

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Background A numerical simulation was carried out to investigate the difference between internal and external heat-flux distributions at the reactor vessel wall under in-vessel retention through external reactor vessel cooling (IVR-ERVC). Methods Total loss of feed water, station blackout, and large break loss of coolant accidents were selected as the severe accident scenarios, and a transient analysis using the element-birth-and-death technique was conducted to reflect the vessel erosion (vessel wall thickness change) effect. Results It was found that the maximum heat flux at the focusing region was decreased at least 10% when considering the two-dimensional heat conduction at the reactor vessel wall. Conclusion The results show that a higher thermal margin for the IVR-ERVC strategy can be achieved in the focusing region. In addition, sensitivity studies revealed that the heat flux and reactor vessel thickness are dominantly affected by the molten corium pool formation according to the accident scenario.
机译:背景进行了数值模拟,以研究通过外部反应堆容器冷却(IVR-ERVC)在容器内滞留情况下反应堆容器壁内部和外部热通量分布之间的差异。方法选择给水总损失,停站停电,冷却剂事故大量破坏损失作为严重事故场景,并采用生死法进行瞬态分析,以反映船舶腐蚀(容器壁厚)。变化)效果。结果发现,当考虑反应堆容器壁上的二维热传导时,聚焦区域的最大热通量降低了至少10%。结论结果表明,IVR-ERVC策略可在聚焦区域实现更高的热裕度。此外,敏感性研究表明,根据事故情况,热流量和反应堆容器的厚度主要受熔融的碳库形成的影响。

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