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Two-phase flow structure at header-channel junctions: PIV experiments and modeling.

机译:联管箱通道交界处的两相流动结构:PIV实验和建模。

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摘要

The discharge of a two-phase flow from a stratified region through single or multiple branches is an important process in many industrial applications including the pumping of fluid from storage tanks, shell-and-tube heat exchangers, and the fluid flow through small breaks in cooling channels of nuclear reactors. Knowledge of the flow phenomena and flow structure involved during the onset of gas entrainments (OGE) in branches is essential for the design and/or performance prediction of such thermal systems.;In the present investigation, extensive data were generated for the two-phase flow structure at the onset of gas entrainment from an air-water stratified region through small branches (d = 6.35 mm) over a wide range of Froude numbers (0 to 100). The test sections were in close dimensional resemblance with that of a CANDU header-feeder system, with branches mounted at orientation angles of 0, 45 and 90 degrees from the horizontal. Three groups of new data were generated for single discharge, dual discharge and triple discharge configurations. The Particle Image Velocimetry (PIV) was used to provide detailed measurements of the two-phase flow field. In each of these measurements, the critical height at the onset of entrainment was first achieved, and the volume of interest close to the branch-header junctions was then determined and divided by a number of horizontal image planes. Each image plane required a separate spatial and temporal calibration for PIV measurements. The vorticity profile, stream lines, flow field development and coherent structure, were presented over a wide range of operating conditions.;A theoretical analysis for the onset of gas entrainment in a single downward discharge, from a stratified gas-liquid region, was developed. The discharge was modeled as a point-sink and Kelvin-Laplace's equation was used to incorporate surface tension effects. The dip geometry was experimentally investigated and a correlation was developed relating the dip radius of curvature to the discharge Froude number. The correlation was used in conjunction with the theoretical model. It was found that the predicted critical height demonstrated a good agreement with experimental data. The inclusion of surface tension improved the model's capability to predict the critical height, particularly at discharge Froude numbers below one. The single-discharge model was then extended to dual and triple discharge cases, with considering the branches as point sinks and two-dimensional slots. The results of dual and triple discharges were found to be a function of mass flow rate through the branches, and the position of the secondary branch (maintaining liquid phase flow only) with respect to the primary branch position (at which OGE occurs) and the angle between the branches. The present analysis applies to any two immiscible fluids with the term "gas entrainment" referring to the appearance of the lighter fluid through the upper branch.
机译:从一个分层区域通过一个或多个分支排出两相流是许多工业应用中的重要过程,包括从储罐,管壳式换热器中抽出流体,以及通过细小缝隙中的流体流。核反应堆的冷却通道。了解分支中夹带气体(OGE)的过程中涉及的流动现象和流动结构对于此类热力系统的设计和/或性能预测至关重要。;在本研究中,为两相生成了大量数据气体从空气-水分层区域通过小分支(d = 6.35 mm)夹带在宽的Froude数(0至100)范围内开始夹带的流动结构。测试部分的尺寸与CANDU集管进料器系统的尺寸近似,分支安装成与水平方向成0、45和90度的定向角。针对单放电,双放电和三放电配置生成了三组新数据。粒子图像测速(PIV)用于提供两相流场的详细测量。在这些测量中的每一个中,首先要达到夹带开始时的临界高度,然后确定靠近分支头连接点的目标体积,然后将其除以多个水平图像平面。每个图像平面都需要对PIV测量进行单独的空间和时间校准。给出了在各种工作条件下的涡度分布图,流线,流场发展和相干结构。;对分层气液区域中一次向下排放中夹带气体的发生进行了理论分析。将放电建模为点汇模型,并使用Kelvin-Laplace方程来合并表面张力效应。对倾角的几何形状进行了实验研究,并建立了将倾角曲率半径与放电弗洛德数相关的相关性。相关性与理论模型结合使用。发现预测的临界高度与实验数据显示出良好的一致性。包含表面张力提高了模型预测临界高度的能力,尤其是在放电弗劳德数小于1的情况下。然后将单放电模型扩展到双放电和三放电情况,并将分支视为点汇和二维槽。发现两次和三次排放的结果是通过分支的质量流量的函数,第二分支的位置(仅保持液相流)相对于第一分支位置(发生OGE的位置)和分支之间的角度。本分析适用于任何两种不混溶的流体,术语“气体夹带”是指较轻的流体通过上分支出现。

著录项

  • 作者

    Saleh, Wael Fairouz.;

  • 作者单位

    Concordia University (Canada).;

  • 授予单位 Concordia University (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 287 p.
  • 总页数 287
  • 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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