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Experimental and theoretical study of the gas–water two phase flow through a conductance multiphase Venturi meter in vertical annular (wet gas) flow

机译:垂直环形(湿气)流中电导多相文丘里流的气水两相流实验与理论研究

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摘要

Annular gas–liquid two phase flow widely occurs in nuclear industry. Various combinations of techniques have been employed in annular gas–liquid two phase flows to measure the flow parameters (e.g. liquid film thickness, gas volume fraction and the phase flow rates). One of the most useful techniques which has proven attractive for many multiphase flow applications is the electrical conductance technique. This paper presents an advanced conductance multiphase Venturi meter (CMVM) which is capable of measuring the gas volume fractions at the inlet and the throat of the Venturi. A new model was investigated to measure the gas flow rate. This model is based on the measurement of the gas volume fractions at the inlet and the throat of the Venturi meter using a conductance technique rather than relying on prior knowledge of the mass flow quality x. We measure conductance using two ring electrodes flush with the inner surface of the Venturi throat and two ring electrodes flush with the inner surface of the Venturi inlet. The basic operation of the electrical conductance technique in a multiphase flow is that the conductance of the mixture depends on the gas volume fraction in the water. An electronic circuit was built and calibrated to give a dc voltage output which is proportional to the conductance of the mixture which can then be related to the water film thickness in annular flow (and hence to the gas volume fraction). It was inferred from the experimental results that the minimum average percentage error of the predicted gas mass flow rates (i.e. −0.0428%) can be achieved at the optimum gas discharge coefficient of 0.932.
机译:环形气液两相流在核工业中广泛存在。环形气-液两相流中已采用各种技术组合来测量流量参数(例如,液膜厚度,气体体积分数和相流率)。已被证明对许多多相流应用有吸引力的最有用的技术之一是电导技术。本文介绍了一种先进的电导多相文丘里管流量计(CMVM),它能够测量文丘里管的入口和喉部的气体体积分数。研究了测量气体流速的新模型。该模型基于使用电导技术测量文丘里管流量计入口和喉部的气体体积分数,而不是依赖于质量流质量x的先验知识。我们使用与文丘里管喉管内表面齐平的两个环形电极和与文丘里管入口内表面齐平的两个环形电极测量电导。多相流中电导技术的基本操作是,混合物的电导取决于水中的气体体积分数。建造并校准了一个电子电路,以提供与混合物电导成比例的直流电压输出,然后可以将其与环形流动中的水膜厚度(并因此与气体体积分数)相关。从实验结果推断出,在0.932的最佳气体排放系数下,可以实现预测的气体质量流量的最小平均百分比误差(即-0.0428%)。

著录项

  • 作者

    Hasan, Abbas; Lucas, Gary;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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