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HOMOGENIZATION OF CROSS SECTIONS AND COMPUTATION OF DISCONTINUITY FACTORS FOR A REAL 3-D BWR BOTTOM REFLECTOR FOR COMPARISON WITH LATTICE AND NODAL CODES

机译:真实的3D BWR底部反射镜的截面均质化和不连续性因子的计算,与晶格和结点编码进行比较

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摘要

Boiling water reactor (BWR) bottom reflector calculations in lattice codes such as CASMO are presently used only to produce accurate boundary conditions for core interfaces in nodal diffusion codes. Homogenized cross-section constants and discontinuity factors are calculated in one dimension (1-D) without the explicit presence of the control rod absorber. If the spatial flux in a BWR bottom reflector is required, for example, for depletion calculations of withdrawn control rods, the homogenization of the reflector must be based on a representation of the three-dimensional (3-D) geometry and material composition that is as true as possible. This paper investigates differences in cross-section and discontinuity factors from 1 -D calculations in CASMO with 3-D Monte Carlo calculations of a realistic bottom reflector model in MCNP5. The cross-section and discontinuity factors from CASMO and MCNP5 are furthermore implemented in the nodal diffusion code SIMULATES to investigate the effect on the neutronfluxes in the bottom reflector. The results show that for the case investigated, the 1-D homogenization in CASM05 produces a 26% over-estimation of the homogenized thermal absorption cross section in the reflector and a 62% underestimation of the homogenized fast absorption cross section. These cross-section differences have essentially no impact on the neutron flux in the core but cause a 4.5% and 12.3% underestimation of the thermal and fast neutron flux, respectively, in the reflector region.
机译:目前,诸如CASMO之类的晶格代码中的沸水反应堆(BWR)底部反射器计算仅用于为节点扩散代码中的堆芯界面产生准确的边界条件。在一维(1-D)中计算均质化的截面常数和不连续性因子,而无需明确存在控制棒吸收器。如果需要BWR底部反射器中的空间通量,例如,对于抽出的控制杆的损耗计算,则反射器的均质化必须基于三维(3-D)几何形状和材料成分的表示,即尽可能真实。本文研究了CASMO中一维计算与MCNP5中实际底部反射器模型的3-D蒙特卡洛计算的横截面和不连续性因素的差异。此外,在节点扩散代码SIMULATES中实现了CASMO和MCNP5的横截面和不连续性因子,以研究对底部反射器中的中子通量的影响。结果表明,对于所研究的情况,CASM05中的1-D均质化导致反射器中均质化热吸收截面的高估了26%,均质化了快速吸收截面的低估了62%。这些横截面差异基本上对堆芯中的中子通量没有影响,但分别导致反射器区域中的热中子通量和快速中子通量低估了4.5%和12.3%。

著录项

  • 来源
    《Nuclear Technology》 |2012年第1期|p.1-7|共7页
  • 作者单位

    Uppsala University, Department of Physics and Astronomy Division of Applied Nuclear Physics, Box 525, SE-75120 Uppsala, Sweden;

    Uppsala University, Department of Physics and Astronomy Division of Applied Nuclear Physics, Box 525, SE-75120 Uppsala, Sweden;

    Vattenfall Nuclear Fuel AB, Jamtlandsgatan 99, 16260 Vallingby, Stockholm, Sweden;

    Vattenfall Nuclear Fuel AB, Jamtlandsgatan 99, 16260 Vallingby, Stockholm, Sweden;

    Vattenfall Nuclear Fuel AB, Jamtlandsgatan 99, 16260 Vallingby, Stockholm, Sweden;

  • 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
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