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A CFD-based design optimization of air-cooled passive decay heat removal system

机译:基于CFD的风冷被动衰减除热系统的设计优化

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摘要

The concept of the APDHR (Air-cooled Passive Decay Heat Removal) system was suggested to preserve the safety of a nuclear reactor during accidents. Until 3 days after the reactor shutdown caused by non-LOCA accident, water in the Passive Condensate Cooling Tank (PCCT) was used to condense the steam in secondary side. Since then, the steam was cooled by natural convection of air passively and indefinitely. The focus on this study is on the system performance during the natural convection period. Both, finned and bare heat exchangers (HXs) were considered for the design optimization of the APDHR. As a result, fin height of 4 cm, fin spacing of 4 cm and fin thickness of 0.2 cm was determined as a reference fin geometry regarding heat removal capacity and economic fin installation. Then, the sensitivity of several design parameters of APDHR, such as pitch, height, wall temperature of the HXs and the interval of spacer grids, was checked and determined in a viewpoint of better heat removal capacity and compact construction. The pitch between HXs was determined as 20 cm with the outer diameter of HXs were 5.08 cm, and the height of the HXs was decided as 10 m through the height sensitivity study. Based on the results, the numbers of HXs and PCCTs were analyzed considering the decay heat of 3 days after the shutdown to suggest the overall design of the APDHR. The heat transfer coefficients were 10.07 W/m(2)K and 15.76 W/m(2)K in the case of the bare and the finned HXs, respectively. Therefore, the numbers of HXs and PCCTs required can be reduced by using the finned HXs.
机译:提出了APDHR(风冷被动衰变散热)系统的概念,以在发生事故时保持核反应堆的安全。直到非LOCA事故导致反应堆关闭后3天,被动冷凝水冷却箱(PCCT)中的水才被用于冷凝二次侧的蒸汽。从那时起,蒸汽通过空气的自然对流被动地和无限地冷却。这项研究的重点是自然对流期间的系统性能。 APDHR的设计优化考虑了翅片式热交换器和裸露式热交换器(HX)。结果,将翅片高度为4cm,翅片间距为4cm,翅片厚度为0.2cm确定为关于散热能力和经济翅片安装的基准翅片几何形状。然后,考虑到更好的散热能力和紧凑的结构,检查并确定了APDHR几个设计参数的灵敏度,例如间距,高度,HX的壁温和间隔格的间隔。通过高度敏感性研究确定HX之间的间距为20 cm,HX的外径为5.08 cm,HX的高度确定为10 m。根据结果​​,考虑停机后3天的衰变热,分析了HX和PCCT的数量,以提出APDHR的总体设计。裸露的HX和翅片的HX的传热系数分别为10.07 W / m(2)K和15.76 W / m(2)K。因此,可以通过使用带鳍的HX来减少所需的HX和PCCT数量。

著录项

  • 来源
    《Nuclear Engineering and Design》 |2018年第10期|351-363|共13页
  • 作者

    Kim Do Yun; No Hee Cheon;

  • 作者单位
  • 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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