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Impact of Radial Reflector Fidelity on Neutronics and Vessel Fluence Simulations

机译:径向反射器保真度对中型器皿和血管流量模拟的影响

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摘要

The Consortium for Advanced Simulation of Light Water Reactors is developing the Virtual Environment for Reactor Applications (VERA), and the MPACT code, which is the primary deterministic neutron transport solver in VERA, provides sub-pin level flux and power distributions as part of full-scale cycle depletion and analysis. In such calculations, an important aspect is the radial reflector treatment. To improve the fidelity of the radial reflector treatment, MPACT was extended to approximate the modeling of the reactor's structural components such as the core shroud, barrel, neutron pads, and vessel. This work explores several modeling configurations with varying levels of fidelity and computational burden and assesses the importance of modeling fidelity on the eigenvalue and pin power distribution. Two two-dimensional (2-D) problems were analyzed to assess the impact on eigenvalue and pin power distributions with low-fidelity, coarse square cell reflector representations: (1) a Watts Bar Nuclear Plant Unit 1 (WBN1) quarter-core slice with depletion and (2) an AP1000 quarter-core slice. The analyses showed that the effect on eigenvalue is fairly small, but the effect on pin power is more pronounced, especially locally in the assemblies closest to the periphery, where the maximum pin power difference is nearly 3.5% in the AP1000 case. Two additional 2-D problems were used to assess the comparison between the low-fidelity coarse square cell treatment and a high-fidelity geometric representation that uses subpin material specification: (1) the same WBN1 quarter-core slice and (2) a representative model of the NuScale small modular reactor (SMR), which features a solid reflector design with moderator holes. These results demonstrate that even a coarse, low-fidelity representation adequately captures the necessary simulation characteristics. Last, these capabilities were applied to the 2-D WBN1 quarter-core depletion to assess the impact on vessel fluence using VeraShift. From adjoint calculations, pins along the periphery were observed to be of highest importance for fluence calculation, so the impact of the reflector representation in MPACT could theoretically substantially affect the predicted result. However, it was observed that the change in pin powers along the periphery minimally impacts the maximum vessel fluence with a difference within the statistical uncertainty but provides terrific insight on the sensitivity of the peripheral pins.
机译:用于轻型水电反应堆的高级模拟的联盟正在开发反应堆应用(VERA)的虚拟环境,并且是VERA中主要确定性中子传输求解器的MPACT代码,提供子引脚电平磁通量和功率分布式作为满的一部分 - 循环耗尽和分析。在这种计算中,一个重要方面是径向反射器处理。为了提高径向反射器处理的保真度,延长Mpact以近似反应器的结构部件的建模,例如芯护罩,筒,中子垫和容器。这项工作探讨了几种模型配置,具有不同级别的保真度和计算负担,并评估了对特征值和引脚配电的建模保真度的重要性。分析了两种二维(2-D)问题,以评估利用低保真度,粗方电池反射器表示对特征值和销电源分布的影响:(1)瓦特核电站1(WBN1)四分之一核心切片用耗尽和(2)AP1000季度核心切片。分析表明,对特征值的影响相当小,但对销电源的影响更加明显,特别是在最接近周边的组件中,其中最大PIN功率差在AP1000外壳中近3.5%。两种额外的2-D问题用于评估低保真粗方细胞处理与使用子级材料规格的高保真几何表示之间的比较:(1)相同的WBN1四分之一核心切片和(2)代表NUSCALE小型模块化反应器(SMR)的模型,其具有带音频孔的固体反射器设计。这些结果表明,即使是粗糙,低保真表示充分捕获必要的模拟特性。最后,将这些能力应用于2-D WBN1四分之一核心耗尽,以评估利用生命速率对血管注释的影响。从伴随计算中,观察到沿周边的引脚对于注量计算具有最重要的价值,因此对MPACT中的反射器表示的影响可能大大影响预测结果。然而,观察到沿周边的销电力的变化最小地影响最大容器,在统计不确定性内的差异,但为外围引脚的灵敏度提供了极大的洞察力。

著录项

  • 来源
    《Nuclear Technology》 |2021年第4期|582-595|共14页
  • 作者单位

    Oak Ridge National Laboratory Oak Ridge Tennessee;

    Oak Ridge National Laboratory Oak Ridge Tennessee;

    Oak Ridge National Laboratory Oak Ridge Tennessee;

    Oak Ridge National Laboratory Oak Ridge Tennessee;

    Oak Ridge National Laboratory Oak Ridge Tennessee;

  • 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

    VERA; MPACT; Shift; reflector; vessel fluence;

    机译:维拉;mpact;转移;反射器;船只流量;

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