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Towards Understanding Melt Eruption Phenomena During Molten CoriumConcrete Interactions

机译:努力了解熔融碳期间的熔喷现象具体的相互作用

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A defense-in-depth feature for advanced light water reactors to cope with beyond design basis accidents is the ability to cool and stabilize ex-vessel core melt debris. Several international experimental programs have investigated core-concrete interactions and debris cooling of ex-vessel core melts. These experimental programs have identified various phenomena which affect melt coolability and may enhance it. One such phenomenon, melt eruptions, occurs when gas from the underlying decomposing concrete entrains melt up through and onto a solidified crust, which separates the molten melt from the cooling water. Previous modeling and experimental work have shown this cooling mechanism can have a large impact on melt coolability. Previous melt eruption models are reviewed and a new synthesis model is proposed. Reviewing past experimental evidence and modeling efforts indicate the geometry of the flow area impacts the amount of melt ejected. To understand the potential flow area available for melt eruptions, past experimental evidence is reviewed, a steady state analysis of flow area is performed and non-steady state considerations are discussed.
机译:先进轻水反应堆的深度防御功能是能够冷却和稳定船外堆芯熔体碎屑,以应对超出设计基准的事故。几个国际实验计划已经研究了前容器芯熔体的芯-混凝土相互作用和碎屑冷却。这些实验程序已经确定了各种影响熔体可冷却性并可能增强其冷却性的现象。一种这样的现象,即熔体喷发,是当来自下面的可分解混凝土的气体夹带并穿过凝固的硬皮向上融化,从而使熔融的熔体与冷却水分离时发生的。先前的建模和实验工作表明,这种冷却机制会对熔体的可冷却性产生很大的影响。审查了以前的熔喷模型,并提出了一个新的合成模型。回顾过去的实验证据和建模工作表明,流动区域的几何形状会影响喷出的熔体数量。为了了解可用于熔体喷发的潜在流动面积,回顾了过去的实验证据,对流动面积进行了稳态分析,并讨论了非稳态因素。

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