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Numerical and experimental investigation on labyrinth seal mechanism for bypass flow reduction in prismatic VHTR core

机译:迷宫式密封减少VHTR型芯旁路流动的数值和实验研究

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摘要

Core bypass flow in block type very high temperature reactor (VHTR) occurs due to the inevitable gaps between the hexagonal core blocks for the block installation and refueling. Since the core bypass flow affects the reactor safety and efficiency, it should be minimized to enhance the core thermal margin. In this regard, the core bypass flow reduction method applying the labyrinth seal mechanism was developed and optimized by using the single-objective shape optimization method. Response surface approximation (RSA) method was adopted as the optimization method. Side wall of the replaceable reflector block was redesigned and response surface approximate model was adopted to optimize the shape of the reflector wall. Computational fluid dynamics (CFD) analyses were carried out not only to assess the limitation of existing method of bypass flow reduction, but also to optimize the design of a newly developed reduction method. The experiment with Seoul National University (SNU) multi-block experimental facility was performed to demonstrate the performance of the reduction method. It was found that the effect of the existing bypass flow reduction method by sealing the bypass gap exit was restricted nearby the lower region of the core. However, the flow resistance factor of the bypass gap increased from 18.04 to 26.24 by the optimized reduction method. The results of the performance test showed that the bypass flow distribution was reduced throughout the entire core regions. The bypass flow ratios at the inlet and the outlet were reduced by 36.19% and 14.66%, respectively. In conclusion, it is expected that the core thermal margin and efficiency of VHTR reactor cooling can be enhanced by applying the developed bypass flow reduction method.
机译:由于六边形铁心块之间不可避免地存在间隙,因此在铁心块型非常高温反应堆(VHTR)中发生铁心旁路流动,这是因为铁心块需要安装和加油。由于堆芯旁路流动会影响反应堆的安全性和效率,因此应将其最小化以提高堆芯的热裕度。在这方面,通过使用单目标形状优化方法,开发并优化了采用迷宫式密封机构的堆芯旁通流量减小方法。优化方法采用响应面近似(RSA)方法。重新设计了可更换反射镜块的侧壁,并采用响应面近似模型优化了反射镜壁的形状。进行了计算流体动力学(CFD)分析,不仅是为了评估现有旁路流量减少方法的局限性,而且是为了优化新开发的减少方法的设计。使用首尔国立大学(SNU)多块实验设备进行了实验,以证明还原方法的性能。已经发现,通过密封旁通间隙出口来减少现有旁通流量的方法的效果被限制在堆芯下部附近。但是,通过优化的减小方法,旁路间隙的流阻系数从18.04增加到26.24。性能测试的结果表明,在整个核心区域内,旁路流量的分布都减小了。入口和出口的旁路流量比分别降低了36.19%和14.66%。总之,可以预期,通过应用开发的旁路流量减少方法,可以提高VHTR反应堆的堆芯热裕度和冷却效率。

著录项

  • 来源
    《Nuclear Engineering and Design》 |2013年第9期|525-534|共10页
  • 作者单位

    Department of Nuclear Engineering, Seoul National University, San 56-7, Daehak-Dong, Kwanak-Gu, Seoul 151-742, Republic of Korea;

    Department of Nuclear Engineering, Seoul National University, San 56-7, Daehak-Dong, Kwanak-Gu, Seoul 151-742, Republic of Korea;

    Department of Mechanical Engineering, Inha University, 253 Yonghyun-Dong, Nam-Gu, Incheon 402-751, Republic of Korea;

    Korea Atomic Energy Research Institute, 150-7 Deokjin-Dong, 1045 Daedeokdaero, Yuseong, Daejeon 305-353, Republic of Korea;

    Korea Atomic Energy Research Institute, 150-7 Deokjin-Dong, 1045 Daedeokdaero, Yuseong, Daejeon 305-353, Republic of Korea;

    Department of Mechanical Engineering, Inha University, 253 Yonghyun-Dong, Nam-Gu, Incheon 402-751, Republic of Korea;

    Department of Nuclear Engineering, Seoul National University, San 56-7, Daehak-Dong, Kwanak-Gu, Seoul 151-742, Republic of Korea;

  • 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);
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  • 正文语种 eng
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