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COMPUTATIONAL FLUID DYNAMICS ANALYSIS OF VERY HIGH TEMPERATURE GAS-COOLED REACTOR CAVITY COOLING SYSTEM

机译:高温气冷堆型腔冷却系统的计算流体动力学分析

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摘要

The design of passive heat removal systems is one of the main concerns for the modular very high temperature gas-cooled reactors (VHTR) vessel cavity. The reactor cavity cooling system (RCCS) is a key heat removal system during normal and off-normal conditions. The design and validation of the RCCS is necessary to demonstrate that VHTRs can survive to the postulated accidents. The computational fluid dynamics (CFD) STAR-CCM+/V3.06.006 code was used for three-dimensional system modeling and analysis of the RCCS. A CFD model was developed to analyze heat exchange in the RCCS. The model incorporates a 180-deg section resembling the VHTR RCCS experimentally reproduced in a laboratory-scale test facility at Texas A&M University. All the key features of the experimental facility were taken into account during the numerical simulations. The objective of the present work was to benchmark CFD tools against experimental data addressing the behavior of the RCCS following accident conditions. Two cooling fluids (i.e., water and air) were considered to test the capability of maintaining the RCCS concrete walls' temperature below design limits. Different temperature profiles at the reactor pressure vessel (RPV) wall obtained from the experimental facility were used as boundary conditions in the numerical analyses to simulate VHTR transient evolution during accident scenarios. Mesh convergence was achieved with an intensive parametric study of the two different cooling configurations and selected boundary conditions. To test the effect of turbulence modeling on the RCCS heat exchange, predictions using several different turbulence models and near-wall treatments were evaluated and compared. The comparison among the different turbulence models analyzed showed satisfactory agreement for the temperature distribution inside the RCCS cavity medium and at the standpipes walls. For such a complicated geometry and flow conditions, the tested turbulence models demonstrated that the realizable k-e model with two-layer all y~+ wall treatment performs better than the other k-e and k-co turbulence models when compared to the experimental results and the Reynolds stress transport turbulence model results. A scaling analysis was developed to address the distortions introduced by the CFD model in simulating the physical phenomena inside the RCCS system with respect to the full plant configuration. The scaling analysis demonstrated that both the experimental facility and the CFD model achieve a satisfactory resemblance of the main flow characteristics inside the RCCS cavity region, and convection and radiation heat exchange phenomena are properly scaled from the actual plant.
机译:被动式排热系统的设计是模块化超高温气冷堆(VHTR)容器腔室的主要关注之一。在正常和异常状态下,反应堆腔冷却系统(RCCS)是关键的排热系统。 RCCS的设计和验证对于证明VHTR能够承受假定的事故是必要的。计算流体动力学(CFD)STAR-CCM + / V3.06.006代码用于RCCS的三维系统建模和分析。开发了CFD模型以分析RCCS中的热交换。该模型具有类似于VHTR RCCS的180度截面,该截面是在德克萨斯A&M大学的实验室规模测试设施中通过实验方法复制的。在数值模拟过程中考虑了实验设备的所有关键特征。本工作的目的是根据针对事故情况后RCCS行为的实验数据对CFD工具进行基准测试。考虑使用两种冷却液(即水和空气)来测试将RCCS混凝土墙的温度保持在设计极限以下的能力。从实验设施获得的反应堆压力容器(RPV)壁处的不同温度曲线在数值分析中用作边界条件,以模拟事故场景中VHTR瞬态演变。通过对两种不同的冷却配置和选定的边界条件进行深入的参数研究,可以实现网格收敛。为了测试湍流模型对RCCS换热的影响,评估并比较了使用几种不同湍流模型和近壁处理的预测结果。所分析的不同湍流模型之间的比较表明,RCCS腔内介质和立管壁的温度分布令人满意。对于如此复杂的几何和流动条件,经测试的湍流模型表明,与实验结果和雷诺相比,采用两层全y〜+壁处理的可实现的ke模型的性能优于其他ke和k-co湍流模型。应力传输湍流模型结果。进行了比例分析,以解决CFD模型在模拟RCCS系统内部相对于整个工厂配置的物理现象时引入的变形。规模分析表明,实验设施和CFD模型都实现了RCCS腔区域内部主流流动特性的令人满意的相似,并且对流和辐射热交换现象已根据实际工厂进行了适当缩放。

著录项

  • 来源
    《Nuclear Technology》 |2011年第2期|p.238-259|共22页
  • 作者单位

    Texas A&M University, Department of Nuclear Engineering 129 Zachry Engineering Center, College Station, Texas;

    Texas A&M University, Department of Nuclear Engineering 129 Zachry Engineering Center, College Station, Texas;

    Texas A&M University, Department of Chemical Engineering 224 Jack E. Brown Building, College Station, Texas;

  • 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

    reactor cavity cooling system; natural convection; radiation;

    机译:反应堆腔冷却系统;自然对流;辐射;

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