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首页> 外文期刊>International Journal of Heat and Fluid Flow >Flow regime development analysis in adiabatic upward two-phase flow in a vertical annulus
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Flow regime development analysis in adiabatic upward two-phase flow in a vertical annulus

机译:垂直环空绝热向上两相流动的流态发展分析

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摘要

In this work radial and axial flow regime development in adiabatic upward air-water two-phase flow in a vertical annulus has been investigated. Local flow regimes have been identified using conductivity probes and neural networks techniques. The inner and outer diameters of the annulus are 19.1 mm and 38.1 mm, respectively. The equivalent hydraulic diameter of the flow channel, DH, is 19.0 mm and the total length is 4.37 m. The flow regime map includes 1080 local flow regimes identifications in 72 flow conditions within a range of 0.01 m/s < < 3.5 m/s where (j_g) and (j_f) are, respectively, superficial gas and liquid velocities. The local flow regime has been classified into four categories: bubbly, cap-slug, churn-turbulent and annular flows. In order to study the radial and axial development of flow regime the measurements have been performed at five radial locations. The three axial positions correspond to zjD_H = 52, 149 and 230, where z represents the axial position. The flow regime indicator has been chosen as some statistical parameters of local bubble chord length distributions and self-organized neural networks have been used as mapping system. This information has been also used to compare the results given by the existing flow regime transition models. The local flow regime is characterized basically by the void fraction and bubble chord length. The radial development of flow regime shows partial and complete local flow regime combinations. The radial development is controlled by axial location and superficial liquid velocity. The radial flow regime transition is always initiated in the center of the flow channel and it is propagated towards the channel boundaries. The axial development of flow regime is observed in all the flow maps and it is governed by superficial liquid velocity and radial location. The prediction results of the models are compared for each flow regime transition.
机译:在这项工作中,已经研究了垂直环空中绝热向上的空气-水两相流的径向和轴向流态发展。使用电导率探针和神经网络技术已经确定了局部流动状态。环的内径和外径分别为19.1毫米和38.1毫米。流道的等效水力直径DH为19.0 mm,总长度为4.37 m。流态图包括在0.01 m / s j_g)<30 m / s和0.2 m / s j_f> <3.5 m / s的范围内的72种流动条件下的1080个局部流态标识。 (j_f)分别是表观气体和液体速度。局部流态被分为四类:气泡流,帽塞流,搅动湍流流和环形流。为了研究流态的径向和轴向发展,已经在五个径向位置进行了测量。这三个轴向位置对应于zjD_H = 52、149和230,其中z表示轴向位置。选择流动状态指示器作为局部气泡弦长度分布的一些统计参数,并将自组织神经网络用作映射系统。此信息也已用于比较现有流态转换模型给出的结果。局部流动状态的基本特征是空隙率和气泡弦长。流态的径向发展表明局部和完全局部流态组合。径向发展是由轴向位置和表面液体速度控制的。径向流态转换总是始于流道的中心,并朝着流道边界传播。在所有流图中都观察到了流态的轴向发展,并受表观液体速度和径向位置的控制。针对每个流态转换对模型的预测结果进行比较。

著录项

  • 来源
    《International Journal of Heat and Fluid Flow》 |2011年第1期|p.164-175|共12页
  • 作者单位

    Departamento de lngenieria Mecanicay Construccidn, Universitat Jaume 1, Campus de Riu Sec, Castellon 12071, Spain;

    School of Nuclear Engineering, Purdue University, 400 Central Dr., West Lafayette, IN 47907-2017, USA;

    Korea Atomic Energy Research Institute, 150 Dukjin, Yuseong, Daejeon 305-353, Republic of Korea;

    School of Nuclear Engineering, Purdue University, 400 Central Dr., West Lafayette, IN 47907-2017, USA;

    School of Nuclear Engineering, Purdue University, 400 Central Dr., West Lafayette, IN 47907-2017, USA;

  • 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

    two-phase flow; local flow regime; annulus; neural network; conductivity probe;

    机译:两相流;局部流态;环空;神经网络;电导率探针;

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