Mitigating Hydrogen Risks in Light-Water Nuclear Reactors: A CFD Simulation of the Distribution and Concentration

Hydrogen Pub Date : 2023-09-22 DOI:10.3390/hydrogen4040045
Joseph Amponsah, Archibong Archibong-Eso
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Abstract

During severe accidents in light-water nuclear reactors, the release of hydrogen poses significant risks to the integrity of the containment and the surrounding infrastructure. To address this, passive autocatalytic re-combiners (PARs) have been adopted in several countries. However, it remains challenging to eliminate the production of flammable combinations and the potential for local flame explosions, even with PARs installed. Understanding the distribution and concentration of generated hydrogen, particularly in 100% fuel-clad coolant reactions, is therefore crucial. In this study, numerical investigations using ANSYS CFX, a commercially available code, are conducted to analyze the hydrogen generation and distribution in a 1000 MWe nuclear power plant. The results show the effectiveness of PARs through a comparative evaluation of reactors with PARs and without PARs installed. The simulated scenario involved the release of hydrogen from the reactor pressure vessel, resulting in a reduction in the maximum hydrogen concentration released from 17.85% in the containment model without PARs to 9.72% in the containment model with PARs installed after 22,000 s. These findings highlight the importance of understanding and controlling the hydrogen distribution in light-water nuclear reactors during severe accidents. This study is useful in informing the mitigation risks strategy for hydrogen release in light-water nuclear reactors.
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减轻轻水核反应堆中的氢风险:分布和浓度的CFD模拟
在轻水核反应堆发生严重事故时,氢气的释放对安全壳和周围基础设施的完整性构成重大风险。为了解决这个问题,一些国家已经采用了被动自催化重组器(par)。然而,即使安装了par,消除可燃组合物的产生和局部火焰爆炸的可能性仍然具有挑战性。因此,了解氢气的分布和浓度,特别是在100%燃料包覆的冷却剂反应中,是至关重要的。在本研究中,利用商用代码ANSYS CFX进行了数值研究,分析了1000mwe核电站的氢气生成和分布。通过对安装和未安装par的反应器进行对比评价,表明了par的有效性。模拟的情景涉及从反应堆压力容器中释放氢气,导致在22,000秒后,未安装par的安全壳模型中释放的最大氢气浓度从17.85%降低到安装了par的安全壳模型中的9.72%。这些发现强调了在严重事故中理解和控制轻水核反应堆中氢分布的重要性。本研究为轻水核反应堆氢释放风险缓解策略提供了参考。
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