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CFD Evaluation of Hydrogen Risk Mitigation Measures in a VVER 440/213 Containment

机译:对CVER评估VVER 440/213安全壳中的氢气风险缓解措施

摘要

In the PHARE project "Hydrogen Management for the VVER440/213" (HU2002/000-632-04-01), CFD (Computational Fluid Dynamics) calculations using GASFLOW, FLUENT and CFX were performed for the Paks NPP (Nuclear Power Plant), modelling a defined severe accident scenario which involved the release of hydrogen. The purpose of this work was to demonstrate that CFD codes could be used to model gas movement inside a containment during a severe accident. With growing experience in performing such analyses, the results support the use of CFD in assessing the risk of losing containment integrity as a result of hydrogen deflagrations. As an effective mitigation measure in such a situation, the implementation of catalytic recombiners is planned in the Paks NPP. In order to support these plans both unmitigated and recombiner-mitigated simulations were performed. These are described and selected results are compared. The codes CFX and FLUENT needed refinement to their models of wall and bulk steam condensation in order to be fully simulate the severe accident under consideration.Several CFD codes were used in parallel to model the same accident scenario in order to reduce uncertainties in the results. Previously it was considered impractical to use CFD codes to simulate a full containment subject to a severe accident extending over many hours. This was because of the expected prohibitive computing times and missing physical capabilities of the codes. This work demonstrates that, because of developments in the capabilities of CFD codes and improvements in computer power, these calculations have now become feasible.
机译:在PHARE项目“ VVER440 / 213的氢气管理”(HU2002 / 000-632-04-01)中,对Paks NPP(核电厂)使用GASFLOW,FLUENT和CFX进行了CFD(计算流体动力学)计算,对定义的涉及氢气释放的严重事故情景进行建模。这项工作的目的是证明在严重事故期间CFD代码可用于模拟安全壳内的气体运动。随着执行此类分析的经验不断增长,结果支持使用CFD评估氢爆燃导致失去安全壳完整性的风险。作为这种情况下的有效缓解措施,计划在Paks核电厂中实施催化重组器。为了支持这些计划,进行了未缓解和重组后缓解的模拟。描述这些内容并比较所选结果。为了完全模拟正在考虑的严重事故,CFX和FLUENT代码需要对其壁和大体积蒸汽冷凝模型进行完善,同时使用多个CFD代码对同一事故场景进行建模,以减少结果的不确定性。以前,使用CFD代码来模拟完全安全壳被认为是不切实际的,因为严重事故要持续数小时。这是因为预期的计算时间过长,并且缺少代码的物理功能。这项工作表明,由于CFD代码功能的发展和计算机功能的提高,这些计算现在变得可行。

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