首页> 外文会议>International conference on nuclear engineering >NUMERICAL TWO-PHASE FLOWS SIMULATION AND ANALYSIS OF THE EVOLUTION OF THE LOCAL HYDROGEN CONCENTRATION IN A PWR NUCLEAR CONTAINMENT IN THE EVENT OF A SEVERE ACCIDENT
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NUMERICAL TWO-PHASE FLOWS SIMULATION AND ANALYSIS OF THE EVOLUTION OF THE LOCAL HYDROGEN CONCENTRATION IN A PWR NUCLEAR CONTAINMENT IN THE EVENT OF A SEVERE ACCIDENT

机译:严重事故下压水堆核内两相流的数值模拟与分析

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The Fukushima accident reminded us of the possible consequences in terms of radiological release that can result from a hydrogen explosion in a nuclear power plant, and, specifically, within the containment of a water cooled reactor building. Some mitigation means against hydrogen hazards exist but performance improvements in numerical tools simulating thermal-hydraulic flows and hydrogen combustion are necessary to allow realistic assessments of severe accident consequences in the containment. In this context, EDF works on CFD simulation of hydrogen distribution in penalized conditions. After dealing with cases for which the water spray system was assumed to be unavailable, and so treated with single-phase CFD code [1] [2], the present paper content is now about simulation and analysis of the local hydrogen concentration in the case of a severe accident for which the water spray system is available. Numerical developments of a multi-phase CFD code (Neptune_CFD) and code validation lead to consistent simulations. The numerical simulation performed by EDF confirms the favorable safety impact of water spray on pressure and temperature for a LOCA scenario occurring on a 1300 MWe Pressurized Water Reactor. Nevertheless, CFD results show that the activation of the spray system before hydrogen injection gives greater hydrogen concentration. So, in the future, to better assess hydrogen risk, EDF will perform computations at CFD taking into account the interaction between combustion and water sprays.
机译:福岛事故使我们想起了核电站特别是水冷反应堆建筑物内的氢爆炸可能导致的放射性释放带来的后果。存在一些缓解氢气危害的缓解手段,但是必须进行数值模拟热力流动和氢气燃烧的工具的性能改进,才能对安全壳内的严重事故后果进行实际评估。在这种情况下,EDF致力于在不利条件下对氢分布进行CFD模拟。在处理了假定无法使用喷水系统的情况后,用单相CFD代码[1] [2]处理后,本文的内容现在是关于该情况下局部氢浓度的模拟和分析。有喷水系统的严重事故。多阶段CFD代码(Neptune_CFD)的数字化发展和代码验证带来了一致的仿真。 EDF进行的数值模拟证实了在1300 MWe压水反应堆上发生的LOCA情况下,喷水对压力和温度的有利安全影响。尽管如此,CFD结果表明在注入氢之前喷雾系统的活化会产生更大的氢浓度。因此,在将来,为了更好地评估氢气风险,EDF将在CFD进行计算,并考虑到燃烧和喷水之间的相互作用。

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