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Characterization of bubble entrainment, interfacial roughness and the sliding bubble mechanism in horizontal annular flow.

机译:水平环形流中气泡夹带,界面粗糙度和滑动气泡机理的表征。

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摘要

Flow boiling inside pipes is a widely implemented means of heat transfer in many branches of industry and energy generation. However, the nature and relative importance of the underlying mechanisms linked to this type of process are still a matter of controversy. This study addresses three particular aspects of the mechanistic approach for the explanation of flow boiling heat transfer. The flow mechanics observed in horizontal two-phase adiabatic air/water flow are studied in an effort to explain flow boiling. Specifically, entrained bubble behavior related to the sliding bubble heat transfer mechanism and pressure drop in the annular flow regime are studied using three optical techniques. Backlit bubble contour imaging is used to obtain estimates of the size distribution and entrained bubble concentration within the thin liquid film in annular flow. Planar Laser Induced Fluorescence (PLIF) is used for qualitatively documenting the bubble entrainment mechanism associated with disturbance waves in annular flow. The PLIF technique also proves useful in directly measuring the film thickness and interfacial roughness of the flow. A more integral view of the pressure drop mechanisms that exist in annular flow is obtained as a result of an automated analysis of the roughness data. A CFD simulation of the sliding bubble mechanism is used to predict the effect of bubble diameter and outer flow conditions on the modulation of turbulence. The results from the simulation are used in constructing an understanding of the cooling effect of individual sliding bubbles associated with enhanced turbulent mixing. Finally, a cross-cut micro-scale particle image velocimetry (PIV) system with micron scale spatial resolution is proposed for studying the dynamic behavior of entrained bubbles and the liquid flow around them. The estimation of the cumulative effect of a given concentration, size distribution and radial location of entrained bubbles, coupled to the knowledge of the flow parameters that produce those entrainment characteristics, can help elucidate the physics represented by empirical quantities in current saturated flow boiling heat transfer models.
机译:管道内的沸腾沸腾是工业和能源生产的许多分支中广泛采用的传热手段。但是,与此类过程相关的基本机制的性质和相对重要性仍然是一个有争议的问题。这项研究解决了机械方法的三个特定方面,用于解释流动沸腾传热。为了解释流动沸腾,研究了在水平两相绝热空气/水流中观察到的流动力学。具体而言,使用三种光学技术研究了与滑动气泡传热机制和环流状态下的压降有关的夹带气泡行为。背光气泡轮廓成像用于获得环形流动中液体薄膜内的尺寸分布和夹带气泡浓度的估计值。平面激光诱导荧光(PLIF)用于定性地记录与环流中的扰动波相关的气泡夹带机制。事实证明,PLIF技术可用于直接测量流的膜厚和界面粗糙度。通过对粗糙度数据进行自动分析,可以获得环形流动中存在的压降机制的更完整视图。滑动气泡机制的CFD模拟用于预测气泡直径和外部流动条件对湍流调制的影响。模拟的结果用于构建对与增强湍流混合相关的单个滑动气泡的冷却效果的理解。最后,提出了一种具有微米级空间分辨率的横切式微尺度粒子图像测速系统(PIV),用于研究夹带气泡及其周围液体流动的动力学行为。给定浓度,尺寸分布和夹带气泡的径向位置的累积效应的估计,加上产生这些夹带特性的流动参数的知识,可以帮助阐明由当前饱和流沸腾传热中的经验量表示的物理现象。楷模。

著录项

  • 作者

    Rodriguez, Daniel J.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 210 p.
  • 总页数 210
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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