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CFD modelling of hydrogen stratification in enclosures: Model validation and application to PAR performance

机译:外壳中氢分层的CFD建模:模型验证和对PAR性能的应用

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摘要

Computational Fluid Dynamics (CFD) models are maturing into useful tools for supporting safety analyses. This paper investigates the capabilities of CFD models for predicting hydrogen stratification in a containment vessel using data from the NEA/OECD SETH2 MISTRA experiments. Further simulations are then carried out to illustrate the qualitative effects of hydrogen stratification on the performance of Passive Autocatalytic Recombiner (PAR) units. The MISTRA experiments have well-defined initial and boundary conditions which makes them well suited for use in a validation study. Results are presented for the sensitivity to mesh resolution and mesh type. Whilst the predictions are shown to be largely insensitive to the mesh resolution they are surprisingly sensitive to the mesh type. In particular, tetrahedral meshes are found to induce small unphysical convection currents that result in molecular diffusion and turbulent mixing being under-predicted. This behaviour is not unique to the CFD model used here (ANSYS CFX) and furthermore, it may affect simulations run on other non-aligned meshes (meshes that are not aligned perpendicular to gravity), including non-aligned structured meshes. Following existing best practice guidelines can help to identify potential unphysical predictions, but as an additional precaution consideration should be given to using gravity-aligned meshes for modelling stratified flows. CFD simulations of hydrogen recombination in the Becker Technologies THAI facility are presented with high and low PAR positions and homogeneous and stratified initial hydrogen distributions. For the stratified initial hydrogen distribution, as expected, the high PAR location performs better than the low positioned PAR. However, for the homogeneous initial hydrogen distribution, the low PAR location performs better than the high PAR. The work demonstrates that CFD can be a useful tool to help inform the positioning of PAR units, which may provide a practicable risk-reduction measure for situations where hydrogen releases are possible. Crown Copyright (C) 2016 Published by Elsevier B.V.
机译:计算流体动力学(CFD)模型正在逐渐成熟,成为支持安全分析的有用工具。本文使用来自NEA / OECD SETH2 MISTRA实验的数据研究了CFD模型预测安全壳中氢分层的能力。然后进行进一步的模拟,以说明氢分层对被动自催化重组器(PAR)单元性能的定性影响。 MISTRA实验具有明确定义的初始条件和边界条件,因此非常适合用于验证研究。给出了对网格分辨率和网格类型的敏感性的结果。虽然预测显示对网格分辨率基本不敏感,但令人惊讶地对网格类型敏感。特别是,发现四面体网格会引起小的非物理对流,从而导致分子扩散和湍流混合的预测不足。此行为不是此处使用的CFD模型(ANSYS CFX)所独有的,而且,它可能会影响在其他非对齐网格(未垂直于重力对齐的网格)上运行的模拟,包括非对齐结构化网格。遵循现有的最佳实践准则可以帮助识别潜在的非物理预测,但作为额外的预防措施,应考虑使用重力对齐的网格对分层流进行建模。 Becker Technologies THAI设施中氢重组的CFD模拟显示了高和低PAR位置以及均一且分层的初始氢分布。对于分层的初始氢分布,如预期的那样,高PAR位置的性能优于低位置PAR。但是,对于均匀的初始氢分布,低PAR位置的性能要好于高PAR。这项工作表明,CFD可以作为帮助告知PAR单元位置的有用工具,对于可能释放氢气的情况,它可以提供切实可行的降低风险的措施。官方版权(C)2016由Elsevier B.V.发布

著录项

  • 来源
    《Nuclear Engineering and Design》 |2016年第12期|142-153|共12页
  • 作者

    Hoyes J. R.; Ivings M. J.;

  • 作者单位

    Hlth & Safety Lab, Buxton, England;

    Hlth & Safety Lab, Buxton, England;

  • 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
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