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Droplet impaction in nuclear installations and safety analysis: Phenomena, findings and approaches

机译:核设施和安全分析中的液滴刻度:现象,调查结果和方法

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摘要

Droplet impaction on the wall surface is ubiquitous in natural and industrial applications. Understanding this phenomenon is also significant to nuclear installation design and safety analysis. In this study, we review the phenomena of droplets impaction (or impingement) on the wall surface and approaches to study them in nuclear engineering. Firstly, we examine the droplet impaction phenomenon in four types of nuclear installations: moisture separator, spray system, steel pipes and fuel channel. In moisture separator, the secondary droplets produced by the droplet splashing reduce the separation efficiency. Further, the study of heat transfer between the impaction droplet and the wall is mostly concerned with the spray system and the fuel channel. In addition, the continuous droplet impaction might induce erosion of the steel pipes. Secondly, we discuss four accidents where the droplet impaction happens. A large amount of droplets is generated during LOCA (Large break loss-Of-Coolant Accident) through the liquid leaking in the installations. The consequence is that deposited droplets would be suddenly vaporized to form a high-pressure vapor, leading a high explosion risk. In accident of fuel-coolant interaction, droplets can be either water or metal, both of which will generate lots of heat after impaction. Additionally, the droplet impaction in the SG (steam generator) tube leakage accident is mostly found in the analysis. Furthermore, fuel droplet impaction in nuclear power plants is considered in analysis of aircraft crash aimed at nuclear facilities. Thirdly, two types of simulation methods-mesh-free and mesh-based simulation methods-are reviewed for droplet surface modeling. We find that the Moving-Particle Semi-implicit (MPS) method is a popular meshfree method used in nuclear engineering. For the mesh-based method, Volume of Fluid (VOF) is often coupled with the level-set method to both keep good conservation property and capture the free surface with high resolution. Finally, we offer some future directions. This review will acquaint readers with the state-of-the-art work on the droplet impaction in nuclear engineering.
机译:墙面上的液滴撞击在天然和工业应用中普遍存在。了解这种现象对核安装设计和安全分析也是重要的。在这项研究中,我们审查了墙面上的液滴撞击(或冲击)的现象以及在核工程中研究它们的方法。首先,我们在四种类型的核设施中检查液滴Impomationon:水分分离器,喷雾系统,钢管和燃料通道。在水分分离器中,通过液滴产生的次级液滴溅降低了分离效率。此外,撞击液滴和壁之间的热传递的研究主要涉及喷雾系统和燃料通道。此外,连续液滴剥夺可能会诱导钢管的腐蚀。其次,我们讨论了四种事故,其中滴注瞬间发生。通过装置中的液体泄漏,在基因座(大休息丧失的冷却剂事故)期间产生大量液滴。结果是沉积的液滴将突然蒸发以形成高压蒸气,引起高爆炸风险。在燃料冷却剂相互作用的事故中,液滴可以是水或金属,两者都会在撞击后产生大量的热量。另外,SG(蒸汽发生器)管泄漏事故中的液滴Impation主要在分析中找到。此外,在核设施的飞机崩溃分析中考虑了核电厂中的燃料液滴撞击。第三,两种类型的仿真方法 - 无网和基于网格的仿真方法 - 用于液滴表面建模。我们发现移动粒子半隐式(MPS)方法是核工程中使用的流行网格纤维方法。对于基于网格的方法,流体(VOF)的体积通常与水平设定的方法耦合,以保持良好的保护性能,并以高分辨率捕获自由表面。最后,我们提供了一些未来的指示。该审查将熟悉核心核电站液滴撞击的最先进的读者。

著录项

  • 来源
    《Nuclear Engineering and Design》 |2020年第9期|110757.1-110757.17|共17页
  • 作者单位

    Washington Univ Dept Energy Environm & Chem Engn St Louis MO 63130 USA;

    Tsinghua Univ Inst Nucl & New Energy Technol Key Lab Adv Reactor Engn & Safety Beijing 100084 Peoples R China|Sichuan Univ Coll Water Resource & Hydropower State Key Lab Hydraul & Mt River Engn Chengdu 610065 Peoples R China;

    Karlsruhe Inst Technol Inst Nucl & Energy Technol D-76021 Karlsruhe Germany;

    Tsinghua Univ Inst Nucl & New Energy Technol Key Lab Adv Reactor Engn & Safety Beijing 100084 Peoples R 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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