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Two-phase Flow Patterns in a Square Mini-channel
作者姓名:Jianfu ZHAO Gang LIU Bin LI National Microgravity Laboratory  Institute of Mechanics  Chinese Academy of Sciences  Beijing  China.
作者单位:Jianfu ZHAO Gang LIU Bin LI National Microgravity Laboratory,Institute of Mechanics,Chinese Academy of Sciences,Beijing 100080,China.
摘    要:This paper presents a new set of experimental data of air-water flow patterns in a channel with a cross-section of 1×1 mm2. The ranges of the gas and liquid superficial velocities are 0.1-10 m/s and 0.2~7 m/s, respectively. Bubble, bubble-slug, slug, and frothy flows are observed. The present data are compared with other data in mini-channels reported in literature, and also compared with those in normal channel at microgravity, in which the Bond number has the same order of magnitude. The slug-frothy boundary is in consistent with each other, but for the bubble-slug transition, a much smaller value for the transition quality in the drift-flux model is obtained in the present study than those predicted by the empirical relations for the case of microgravity. It's shown that the mini-scale modeling may not be an effective way to anticipate the bubble-slug transition of two-phase flow at microgravity.


Two-phase flow patterns in a square mini-channel
Jianfu ZHAO Gang LIU Bin LI National Microgravity Laboratory,Institute of Mechanics,Chinese Academy of Sciences,Beijing ,China..Two-phase Flow Patterns in a Square Mini-channel[J].Journal of Thermal Science,2004,13(2):174-178.
Authors:Jianfu Zhao  Gang Liu  Bin Li
Affiliation:(1) National Microgravity Laboratory, Institute of Mechanics, Chinese Academy of Sciences, 100080 Beijing, China
Abstract:This paper presents a new set of experimental data of air-water flow patterns in a channel with a cross-section of 1×1 mm2. The ranges of the gas and liquid superficial velocities are 0.1–10 m/s and 0.2–7 m/s, respectively. Bubble, bubble-slug, slug, and frothy flows are observed. The present data are compared with other data in mini-channels reported in literature, and also compared with those in normal channel at microgravity, in which the Bond number has the same order of magnitude. The slug-frothy boundary is in consistent with each other, but for the bubble-slug transition, a much smaller value for the transition quality in the drift-flux model is obtained in the present study than those predicted by the empirical relations for the case of microgravity. It’s shown that the mini-scale modeling may not be an effective way to anticipate the bubble-slug transition of two-phase flow at microgravity.
Keywords:two-phase flow  flow pattern  mini-channel  microgravity
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