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HYDROGEN DISTRIBUTION IN A NUCLEAR REACTOR CONTAINMENT

机译:核反应堆容器中的氢分布

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The management of hydrogen in nuclear reactor containment after LOCA is of practical importance to preserve the structural integrity of the containment. This paper presents the results of systematic work carried out using the commercial software FLUENT to assess the concentration distribution of hydrogen in a typical Indian Nuclear Reactor Containment. Accurate turbulence modelling is important to predict the concentration distribution correctly. The turbulence models which were most commonly cited in the literature for modelling buoyancy driven flows were assessed for their suitability and it was found that the buoyancy modified Standard k-ε model is adequate for the purpose by comparing with some experimental data available in the literature. Subsequently, unstructured meshes were generated to represent the containment of a typical Indian nuclear reactor. Analyses were carried out to quantify the hydrogen distribution for three cases. These were (1) Uniform injection of hydrogen for a given period of time at room temperature, (2) Time varying injection as has been computed from an accident analysis code, (3) Time varying injection (as used in case (2)) at a high temperature. A parametric exercise was also carried out in case (1) where the effect of various inlet orientations and locations on hydrogen distribution was studied. Results of all these cases have been presented in this paper.
机译:LOCA之后对核反应堆安全壳中的氢进行管理对于保持安全壳的结构完整性具有实际重要性。本文介绍了使用商业软件FLUENT进行的系统工作的结果,以评估典型的印度核反应堆安全壳中氢的浓度分布。准确的湍流建模对于正确预测浓度分布很重要。评估了在文献中最常引用的用于对浮力驱动流进行建模的湍流模型的适用性,并通过与文献中提供的一些实验数据进行比较,发现经浮力修正的标准k-ε模型足以满足该目的。随后,生成了非结构化网格,以表示典型印度核反应堆的密闭性。进行了分析以量化三种情况下的氢分布。它们是(1)在室温下在给定的时间内均匀注入氢气;(2)根据事故分析代码计算出的时变注入;(3)时变注入(在情况(2)中使用)在高温下。在情况(1)中还进行了参数演习,其中研究了各种入口方向和位置对氢分布的影响。所有这些情况的结果已在本文中介绍。

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