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A novel 1D/2D model for simulating conjugate heat transfer applied to flow boiling in tubes with external fins

机译:一种新颖的1D / 2D模型,用于模拟共轭传热,该模型适用于带有外部散热片的管中的流沸腾

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摘要

This study presents a novel, simplified model for the time-efficient simulation of transient conjugate heat transfer in round tubes. The flow domain and the tube wall are modeled in 1D and 2D, respectively and empirical correlations are used to model the flow domain in 1D. The model is particularly useful when dealing with complex physics, such as flow boiling, which is the main focus of this study. The tube wall is assumed to have external fins. The flow is vertical upwards. Note that straightforward computational fluid dynamics (CFD) analysis of conjugate heat transfer in a system of tubes, leads to 3D modeling of fluid and solid domains. Because correlation is used and dimensionality reduced, the model is numerically more stable and computationally more time-efficient compared to the CFD approach. The benefit of the proposed approach is that it can be applied to large systems of tubes as encountered in many practical applications. The modeled equations are discretized in space using the finite volume method, with central differencing for the heat conduction equation in the solid domain, and upwind differencing of the convective term of the enthalpy transport equation in the flow domain. An explicit time discretization with forward differencing was applied to the enthalpy transport equation in the fluid domain. The conduction equation in the solid domain was time discretized using the Crank-Nicholson scheme. The model is applied in different boundary conditions and the predicted boiling patterns and temperature fields are discussed.
机译:这项研究为圆管内瞬态共轭传热的时间高效仿真提供了一种新颖的简化模型。分别在1D和2D中对流域和管壁进行建模,并使用经验相关性对1D中的流域进行建模。该模型在处理复杂物理(例如流动沸腾)时特别有用,这是本研究的主要重点。假定管壁具有外部散热片。流量垂直向上。请注意,在管道系统中对共轭传热进行直接的计算流体动力学(CFD)分析会导致对流体域和固体域进行3D建模。由于使用了相关性并且维数减少,因此与CFD方法相比,该模型在数值上更稳定,并且在计算上更省时。所提出的方法的好处是,它可以应用于许多实际应用中遇到的大型管道系统。使用有限体积方法在空间中离散化模型方程,其中在固体域中具有热传导方程的中心差分,在流动域中具有焓传递方程的对流项的迎风差分。将具有正向差分的明确时间离散化应用于流域中的焓传递方程。使用Crank-Nicholson方案将固体域中的传导方程时间离散化。该模型适用于不同的边界条件,并讨论了预测的沸腾模式和温度场。

著录项

  • 来源
    《Heat and mass transfer》 |2015年第4期|553-566|共14页
  • 作者单位

    Institute of Thermal Power Engineering, Faculty of Mechanical Engineering, Cracow University of Technology, Al. Jana Pawla Ⅱ 37, 31-864 Cracow, Poland;

    Institute of Thermal Power Engineering, Faculty of Mechanical Engineering, Cracow University of Technology, Al. Jana Pawla Ⅱ 37, 31-864 Cracow, Poland;

    Institute of Thermal Power Engineering, Faculty of Mechanical Engineering, Cracow University of Technology, Al. Jana Pawla Ⅱ 37, 31-864 Cracow, Poland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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