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Neutronic feasibility design of a small long-life HTR

机译:小型长寿命HTR的中子学可行性设计

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Small high temperature gas-cooled reactors (HTRs) have the advantages of transportability, modular construction and flexible site selection. This paper presents the neutronic feasibility design of a 20 MWth U-Battery, which is a long-life block-type HTR. Key design parameters and possible reactor core configurations of the U-Battery were investigated by SCALE 5.1. The design parameters analyzed include fuel enrichment, the packing fraction of TRISO particles, the radii of fuel compacts and kernels, and the thicknesses of top and bottom reflectors. Possible reactor core configurations investigated include five cylindrical, two annular and four scatter reactor cores for the U-Battery. The neutronic design shows that the 20 MWth U-Battery with a 10-year lifetime is feasible using less than 20% enriched uranium, while the negative values of the temperature coefficients of reactivity partly ensure the inherent safety of the U-Battery. The higher the fuel enrichment and the packing fraction of TRISO particles are, the lower the reactivity swing during 10 years will be. There is an optimum radius of fuel kernels for each value of the fuel compact design parameter (i.e., radius) and a specific fuel lifetime. Moreover, the radius of fuel kernels has a small influence on the infinite multiplication factor of a typical fuel block in the range of 0.2-0.25 mm, when the radius of fuel compacts is 0.6225 cm and the lifetime of the fuel block is 10 years. The comparison of the cylindrical reactor cores with the non-cylindrical ones shows that neutron under-moderation is a basic neutronic characteristic of the reactor core of the U-Battery. Increasing neutron moderation by replacing fuel blocks with graphite blocks and dispersing the graphite blocks in the reactor core are two effective ways to increase the fuel burnup and lifetime of the U-Battery. Water or steam ingress may induce positive reactivity ranging from 0 to 0.16 Ak/k, which further demonstrates that the U-Battery is under-moderated.
机译:小型高温气冷堆(HTR)具有运输方便,模块化结构和灵活的选址优势。本文介绍了一种20兆瓦时U型电池的中子可行性设计,这是一种长寿命的块状HTR。通过SCALE 5.1研究了U型电池的关键设计参数和可能的反应堆堆芯配置。分析的设计参数包括燃料富集,TRISO颗粒的堆积分数,燃料压块和核的半径以及顶部和底部反射器的厚度。研究的可能的反应堆堆芯配置包括用于U电池的五个圆柱形,两个环形和四个散射堆堆芯。中子学设计表明,使用少于20%的浓缩铀,使用10年寿命的20兆瓦特U电池是可行的,而反应性温度系数的负值部分确保了U电池的固有安全性。 TRISO颗粒的燃料富集度和填充率越高,十年内的反应性波动就越低。对于燃料紧凑设计参数的每个值(即,半径)和特定的燃料寿命,都有最佳的燃料核半径。此外,当燃料压块的半径为0.6225cm且燃料块的寿命为10年时,燃料核的半径对典型燃料块在0.2-0.25mm范围内的无限倍数的影响较小。圆柱反应堆芯与非圆柱反应堆芯的比较表明,中子欠缓化是U电池反应堆芯的基本中子学特征。通过用石墨块代替燃料块并将石墨块分散在反应堆堆芯中来提高中子节制是增加U型电池燃料消耗和寿命的两种有效方法。水或蒸汽的进入可能会引起0至0.16 Ak / k的正反应性,这进一步证明了U电池电量不足。

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  • 来源
    《Nuclear Engineering and Design》 |2011年第12期|p.5093-5103|共11页
  • 作者单位

    Delft University of Technology, Mekelweg 75,2629 JB Delft, The Netherlands, College of Nuclear Science and Technology, Harbin Engineering University, Nantong Street 145, Nangang District. Harbin 150001, China;

    Delft University of Technology, Mekelweg 75,2629 JB Delft, The Netherlands, College of Nuclear Science and Technology, Harbin Engineering University, Nantong Street 145, Nangang District. Harbin 150001, China;

  • 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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  • 入库时间 2022-08-18 00:44:35

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