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Numerical simulation of boron injection in a BWR

机译:BWR中硼注入的数值模拟

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The present study constitutes a first step to understand the process of boron injection, transport and mixing in a BWR. It consists of transient CFD simulations of boron injection in a model of the downcomer of Forsmark's Unit 3 containing about 6 million elements. The two cases studied are unintentional start of boron injection under normal operation and loss of offsite power with partial ATWS leaving 10% of the core power uncontrolled. The flow conditions of the second case are denned by means of an analysis with RELAP5, assuming boron injection start directly after the first ECCS injection. Recent publications show that meaningful conservative results may be obtained for boron or thermal mixing in PWRs with grids as coarse as that utilized here, provided that higher order discretization schemes are used to minimize numerical diffusion. The obtained results indicate an apparently strong influence of the scenario in the behavior of the injection process. The normal operation simulation shows that virtually all boron solution flows down to the Main Recirculation Pump inlet located directly below the boron inlet nozzle. The loss of offsite power simulation shows initially a spread of the boron solution over the entire sectional area of the lower part of the downcomer filled with colder water. This remaining effect of the ECCS injection lasts until all this water has left the downcomer. Above this region, the boron injection jet develops in a vertical streak, eventually resembling the injection of the normal operation scenario. Due to the initial spread, this boron injection will probably cause larger temporal and spatial concentration variations in the core. In both cases, these variations may cause reactivity transients and fuel damage due to local power escalation. To settle this issue, an analysis using an extended model containing the downcomer, the MRPs and the Lower Plenum will be carried out. Also, the simulation time will be extended to a scale of several minutes.
机译:本研究是了解BWR中硼注入,运输和混合过程的第一步。它由Forsmark 3号机组降液管模型中的硼注入的瞬态CFD模拟组成,该模型包含约600万个元素。所研究的两个案例是正常运行中意外启动硼注入和部分ATWS导致的场外功率损失,导致10%的核心功率不受控制。假设在第一次ECCS注入后立即开始硼注入,则通过RELAP5分析确定第二种情况的流动条件。最近的出版物表明,只要使用更高阶的离散化方案以最小化数值扩散,就可以在PWR中使用如此处所用的粗糙网格对硼或热混合获得有意义的保守结果。所获得的结果表明该方案对注入过程的行为具有明显的影响。正常运行模拟表明,几乎所有的硼溶液都流到位于硼入口喷嘴正下方的主循环泵入口。非现场功率模拟的损失最初显示了硼溶液在充满冷水的下导管下部整个横截面上的扩散。 ECCS注入的剩余效果一直持续到所有这些水都离开降液管为止。在该区域上方,硼喷射射流呈垂直条纹状发展,最终类似于正常运行情况下的喷射。由于初始扩散,这种硼注入可能会导致岩心中较大的时间和空间浓度变化。在这两种情况下,由于局部功率提升,这些变化可能会导致反应性瞬变和燃料损坏。为了解决这个问题,将使用包含降液管,MRP和下全膜的扩展模型进行分析。而且,模拟时间将延长到几分钟。

著录项

  • 来源
    《Nuclear Engineering and Design》 |2010年第2期|221-234|共14页
  • 作者单位

    Forsmarks Kraftgrupp AB, SE-742 03 OEsthammar, Sweden;

    Reactor Technology, The Royal Institute of Technology, SE-100 44 Stockholm, Sweden;

    Reactor Technology, The Royal Institute of Technology, SE-100 44 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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  • 入库时间 2022-08-18 00:44:54

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