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Modelling of sprays in containment applications with A CMFD code

机译:使用CMFD代码对密闭应用中的喷雾建模

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摘要

During the course of a hypothetical severe accident in a Pressurized Water Reactor (PWR), spray systems are used in the containment in order to prevent overpressure in case of a steam line break, and to enhance the gas mixing in case of the presence of hydrogen.rnIn the frame of the Severe Accident Research Network (SARNET) of the 6th EC Framework Programme, two tests was produced in the TOSQAN facility in order to study the spray behaviour under severe accident conditions: TOSQAN 101 and TOSQAN 113.rnThe TOSQAN facility is a closed cylindrical vessel. The inner spray system is located on the top of the enclosure on the vertical axis. For the TOSQAN 101 case, an initial pressurization in the vessel is performed with superheated steam up to 2.5 bar. Then, steam injection is stopped and spraying starts simultaneously at a given water temperature (around 25 ℃) and water mass flow-rate (around 30 g/s). The depressurization transient starts and continues until the equilibrium phase, which corresponds to the stabilization of the average temperature and pressure of the gaseous mixture inside the vessel.rnThe purpose of the TOSQAN 113 cold spray test is to study helium mixing due to spray activation without heat and mass transfers between gas and droplets.rnWe present in this paper the spray modelling implemented in NEPTUNE.CFD, a three-dimensional multi-fluid code developed especially for nuclear reactor applications. A new model dedicated to the droplet evaporation at the wall is also detailed. Keeping in mind the Best Practice Guidelines, closure laws have been selected to ensure a grid-dependence as weak as possible.rnFor the TOSQAN 113 case, the time evolution of the helium volume fraction calculated shows that the physical approach described in the paper is able to reproduce the mixing of helium by the spray. The prediction of the transient behaviour should be improved by including in the model corrections based on better understanding of the influence of the dispersed phase on the turbulence of the continuous phase.rnFor the TOSQAN 101 case, droplet velocity, steam volume fraction and gas temperature profiles compare favourably with the experimental results. In the frame of the SARNET network, the results obtained with the physical modelling implemented in the NEPTUNE_CFD code reproduce correctly the entrainment phenomena and the condensation zone (Malet and Metier, 2007).
机译:在压水堆(PWR)发生假设性严重事故的过程中,安全壳内使用了喷雾系统,以防止在蒸汽管线破裂时产生超压,并在存在氢气的情况下增强气体混合.rn在第六届EC框架计划的严重事故研究网络(SARNET)的框架内,TOSQAN设施进行了两项测试,以研究严重事故条件下的喷雾行为:TOSQAN 101和TOSQAN 113。封闭的圆柱形容器。内部喷涂系统位于外壳垂直轴的顶部。对于TOSQAN 101外壳,容器中的初始加压是通过高达2.5 bar的过热蒸汽进行的。然后,在给定的水温(约25℃)和水质量流量(约30 g / s)下,停止注入蒸汽并同时开始喷雾。降压过程开始并一直持续到平衡阶段,这与容器内部气体混合物的平均温度和压力的稳定相对应。TOSQAN113冷喷涂试验的目的是研究由于不加热而进行喷涂激活而引起的氦气混合本文介绍了在NEPTUNE.CFD中实现的喷雾建模,这是专门为核反应堆应用开发的三维多流体代码。还详细介绍了专用于壁上液滴蒸发的新模型。牢记最佳实践准则,已选择关闭法则以确保对网格的依赖性尽可能弱.rn对于TOSQAN 113案例,计算出的氦气体积分数随时间的变化表明,本文所述的物理方法是可行的通过喷雾重现氦气的混合。在更好地了解分散相对连续相湍流的影响的基础上,应通过在模型校正中进行改进来改善对瞬态行为的预测。对于TOSQAN 101情况,液滴速度,蒸汽体积分数和气体温度曲线与实验结果相称。在SARNET网络的框架中,使用NEPTUNE_CFD代码实现的物理建模获得的结果正确地再现了夹带现象和凝结带(Malet和Metier,2007年)。

著录项

  • 来源
    《Nuclear Engineering and Design》 |2010年第9期|P.2260-2270|共11页
  • 作者单位

    Electricite de France R&D Division, 6 Quai Watier, F-78400 Chatou, France;

    rnElectricite de France R&D Division, 1 av. du General de Gaulle, F-92140 Clamart, France;

    rnElectricite de France R&D Division, 6 Quai Watier, F-78400 Chatou, France;

    rnElectricite de France SEPTEN Division, 12-14 av. Dutrievoz, 69628 Villeurbanne, France;

    rnElectricite de France SEPTEN Division, 12-14 av. Dutrievoz, 69628 Villeurbanne, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 00:44:55

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