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Improvement of Nodal Accuracy by Using Albedo-Corrected Parameterized Equivalence Constants

机译:通过使用反照率校正的参数化等效常数来提高节点精度

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摘要

This paper introduces the albedo-corrected parameterized equivalence constants (APEC) method, a new method for correcting the homogenized two-group cross sections of the pressurized water reactor (PWR) fuel assemblies (FAs) by taking into account the neutron leakage. First, an analysis was performed of the position dependence of the assembly-homogenized two-group cross sections in an actual core. In order to eliminate the two-group cross-section error in the conventional homogenization method, the APEC method is proposed which parameterizes the homogenized two-group cross sections in terms of an integrated albedo information current-to-flux ratio (CFR). Also, small color-set models are introduced to obtain physically meaningful CFR boundary conditions for the APEC method and their characteristic features are discussed. In the case of FAs with neighboring baffle, slightly modified APEC functions are introduced to deal with the strong spectral interaction between the FA and the baffle-reflector region in PWRs. In addition, an improved APEC function is developed by explicitly accounting for the neutron spectrum change in a FA in terms of a spectral index defined as the fast-to-thermal-flux ratio. For the test of the proposed APEC functions, a small modular reactor (SMR) core was chosen and comparative analyses were performed in detail for each type of homogenized two-group cross section. In this work, the transport lattice code DeCART2D was used for the analysis of the benchmark problems. In the comparative analyses, the APEC-corrected cross sections were compared with the conventional two-group constants and reference ones for several representative FAs. The APEC algorithm was implemented into an in-house nodal expansion method code in conjunction with a partial-current CMFD (p-CMFD) acceleration. The nodal analyses of an SMR initial core and a large PWR core were performed to evaluate the performance of the APEC method. In order to show the generality of the APEC functions obtained from lattice calculations, several modified core configurations were also analyzed. In addition, a rodded SMR initial core problem was also analyzed to test the APEC method in an extremely abnormal core configuration. The nodal analyses showed that the APEC method can improve the nodal accuracy significantly with a small amount of additional computing cost.
机译:本文介绍了反照率校正的参数化当量常数(APEC)方法,这是一种通过考虑中子泄漏来校正压水堆(PWR)燃料组件(FAs)的均质化两组截面的新方法。首先,对实际堆芯中均质的两组截面的位置相关性进行了分析。为了消除常规均质化方法中的两组横截面误差,提出了一种APEC方法,该方法根据积分反照率信息的电流通量比(CFR)参数化了均质化的两组横截面。此外,介绍了小型颜色集模型以获取对APEC方法具有物理意义的CFR边界条件,并讨论了它们的特征。对于具有相邻挡板的FA,引入了稍微修改的APEC功能以处理FA与PWR中挡板与反射镜区域之间的强光谱相互作用。另外,通过以定义为快速热通量比的光谱指数来明确考虑FA中的中子光谱变化,从而开发了改进的APEC功能。为了测试建议的APEC功能,选择了小型模块化反应堆(SMR)堆芯,并对每种类型的均质的两组横截面进行了详细的比较分析。在这项工作中,使用传输晶格代码DeCART2D来分析基准问题。在比较分析中,将经APEC校正的横截面与传统的两组常数以及几个代表性FA的参考常数进行了比较。结合部分电流CMFD(p-CMFD)加速,将APEC算法实现为内部节点扩展方法代码。对SMR初始岩心和大型PWR岩心进行了节点分析,以评估APEC方法的性能。为了显示从网格计算中获得的APEC函数的一般性,还分析了几种修改后的磁芯配置。此外,还分析了杆状SMR初始磁芯问题,以在异常异常的磁芯配置中测试APEC方法。节点分析表明,APEC方法可以显着提高节点精度,而只需少量的额外计算成本。

著录项

  • 来源
    《Nuclear science and engineering》 |2017年第3期|207-245|共39页
  • 作者单位

    Korea Advanced Institute of Science and Technology, 291 Daehak-ro, Yuseong-gu, Daejeon 34141, Korea;

    Korea Advanced Institute of Science and Technology, 291 Daehak-ro, Yuseong-gu, Daejeon 34141, Korea;

    Korea Advanced Institute of Science and Technology, 291 Daehak-ro, Yuseong-gu, Daejeon 34141, 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);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Nodal leakage correction; color-set model; current-to-flux ratio;

    机译:节点泄漏校正;颜色设置模型;电流通量比;

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