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首页> 外文期刊>International Journal of Heat and Mass Transfer >Swirling performance of flow-driven rotating mixing vane toward critical heat flux enhancement
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Swirling performance of flow-driven rotating mixing vane toward critical heat flux enhancement

机译:流动驱动的旋转混合叶片对临界热通量增强的旋流性能

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摘要

This paper presents experimental swirl generation measurements using a flow-driven rotating vane for heat transfer and critical heat flux enhancement in subchannels. In nuclear power plants, there are swirl generators, which are located on the top of the structural grids in the fuel assemblies. The mixing vanes are fixed on the spacer grids, thus there would be a limit for enhancing heat transfer performance because of the fixed positions. An innovative swirl generator, called moving rotational vane, was used to enhance heat transfer performance as well as critical heat flux by maximizing centrifugal force due to the swirl flow on the spacer grid. The experiments were conducted in vertical and horizontal flow experimental facilities using three types of vanes: (1) spacer grid (SG), (2) fixed split vane (FSV), and (3) moving rotational vane (MRV). Particle image velocimetry was applied to visualize the flow characteristics along the test sections; averaged velocity fields, averaged velocity vector components u and v, lateral and longitudinal flow distributions, turbulence intensities, and swirl ratio were analyzed. Computational fluid dynamics analysis was performed to show the effect of swirl generation and an air bubble injection experiment was conducted to show the effect of using the MRV. The pressure drop observed from the experiment using the SG, FSV, and MRV was 0.85, 1.97 and 2.59 kPa, respectively. On the other hand, in the CFD analysis, the pressure drop of the SG, FSV, and MRV was 1.86, 1.95, and 2.01 kPa at the same measurement length of the experiment, respectively. Swirl ratio was analyzed for the FSV and MRV. The swirl ratio of the MRV showed higher value compared to the FSV including conventional fixed split vanes. The analysis showed that the MRV induced the most powerful swirl generation. The MRV could provide secondary flow structures such as mixing and turbulence; thus, enhanced heat transfer as well as critical heat flux performance could be expected.
机译:本文介绍了使用流动驱动的旋转叶片进行子通道传热和临界热通量增强的实验性涡旋产生测量。在核电厂中,有涡流发生器,其位于燃料组件中结构格栅的顶部。混合叶片被固定在间隔栅上,因此由于固定位置而限制了提高传热性能。一种创新的涡流发生器,称为移动旋转叶片,用于通过最大程度地增大由于间隔板上的涡流而产生的离心力来增强传热性能以及临界热通量。实验在垂直和水平流动实验设施中使用三种类型的叶片进行:(1)隔栅(SG),(2)固定分体叶片(FSV)和(3)移动旋转叶片(MRV)。应用了颗粒图像测速仪来可视化沿着测试部分的流动特性。分析了平均速度场,平均速度矢量分量u和v,横向和纵向流分布,湍流强度和涡流比。进行了计算流体动力学分析以显示涡旋产生的影响,并进行了气泡注入实验以显示使用MRV的效果。使用SG,FSV和MRV从实验中观察到的压降分别为0.85、1.97和2.59 kPa。另一方面,在CFD分析中,在相同实验长度下,SG,FSV和MRV的压降分别为1.86、1.95和2.01 kPa。分析了FSV和MRV的涡流比。与包括常规固定分流叶片的FSV相比,MRV的涡流比显示出更高的值。分析表明,MRV诱导了最强大的涡旋产生。 MRV可以提供二级流动结构,例如混合和湍流。因此,可以期望提高传热和临界热通量性能。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2015年第10期|1216-1229|共14页
  • 作者单位

    School of Mechanical and Nuclear Engineering, Ulsan National Institute of Science and Technology (UNIST), 50 UNIST-gil, Ulju-gun, Ulsan 689-798, Republic of Korea;

    School of Mechanical and Nuclear Engineering, Ulsan National Institute of Science and Technology (UNIST), 50 UNIST-gil, Ulju-gun, Ulsan 689-798, Republic of Korea;

    School of Mechanical and Nuclear Engineering, Ulsan National Institute of Science and Technology (UNIST), 50 UNIST-gil, Ulju-gun, Ulsan 689-798, Republic of Korea;

    School of Mechanical and Nuclear Engineering, Ulsan National Institute of Science and Technology (UNIST), 50 UNIST-gil, Ulju-gun, Ulsan 689-798, Republic of Korea;

    School of Mechanical and Nuclear Engineering, Ulsan National Institute of Science and Technology (UNIST), 50 UNIST-gil, Ulju-gun, Ulsan 689-798, Republic of Korea;

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

    Moving rotational vane; Fixed split vane; Spacer grid; CHF enhancement;

    机译:移动旋转叶片;固定分流叶片;垫片网格;CHF增强;

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