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Modeling of In-Line Tube Banks Inside Advanced Gas-Cooled Reactor Boilers

机译:高级气冷锅炉内线管堤的建模

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摘要

The objective of this research is the prediction of forced convection across confined in-line tube banks found in Advanced Gas-Cooled Reactor (AGR) boiler systems. The focus of this work is periodic flow about a 2 × 2 array. A number of Reynolds-Averaged Navier-Stokes (RANS) turbulence modeling closures have been applied to the challenging case of 1.6 pitch-to-diameter spacing at which flow undergoes transition from straight to diagonal. In contrast to Large Eddy Simulation (LES) predictions, those of RANS models fail to predict transition to diagonal flow. As LES computations are not anticipated to become routine enough for the purpose of flow diagnostics in industrial contexts for many years, further refinement to the RANS methodology in the form of an analytical wall function is one of the main objectives. Its eventual inclusion is not only expected to improve the representation of turbulent boundary layer behavior, but also has scope to account for augmented surface roughness effects experienced by AGR technologies nearing their end-of-life. This work is ultimately in aid of EDF Energy's policy of AGR lifetime extensions, to allow the UK Government sufficient time to formulate a credible Nuclear New Build scheme to secure our energy requirements in the coming decades. It was found that all but dynamic LES adequately reproduces flow behavior across all criteria considered, and that standard wall functions left much to be desired in the case of flow and thermal predictions, while introducing the analytical wall function generates improvements for flow and heat transfer predictions that are not universally shared between high-Re models utilized.
机译:该研究的目的是在先进的气冷反应器(AGR)锅炉系统中发现的狭窄的在线管堤上的强制对流预测。这项工作的重点是周期性流动约为2×2阵列。已经将许多雷诺平均的Navier-Stokes(RAN)湍流建模封闭物应用于1.6间距间距的具有挑战性的情况,在该倾斜间距的速度壳体中,该流量从直接转换到对角线。与大型涡流模拟(LES)预测相比,RAN模型的模型无法预测转换到对角线流。由于LES计算未被预期成为流量诊断的常规,以便在工业环境中多年来,进一步改进了分析墙函数的形式的RAN方法是主要目标之一。它的最终包含不仅预计会改善湍流边界层行为的表示,而且还具有占耕作技术经历的增强表面粗糙度影响的范围,接近其寿命的终结。这项工作最终有助于EDF Energy的AGR寿命延长政策,以允许英国政府足够的时间制定可靠的核新建计划,以确保未来几十年的能源需求。发现所有但动态的LES都在考虑的所有标准中充分地再现了流动行为,并且在流动和热预测的情况下,在流动和热预测的情况下,标准壁函数在引入分析壁函数的情况下,为流动和传热预测产生改进在利用的高新模型之间不普遍共享。

著录项

  • 来源
    《Heat Transfer Engineering》 |2020年第22期|1731-1749|共19页
  • 作者单位

    Thermofluids Group School of Mechanical Aerospace and Civil Engineering The University of Manchester Manchester UK;

    Thermofluids Group School of Mechanical Aerospace and Civil Engineering The University of Manchester Manchester UK;

    EDF Energy R&D Modelling and Simulation Centre The University of Manchester Manchester UK;

  • 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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