Gas-liquid flow in circular microchannel. Part I: Influence of liquid physical properties and channel diameter on flow patterns

被引:48
|
作者
Zhang, Tong [1 ,2 ,3 ]
Cao, Bin [1 ,2 ]
Fan, Yilin [1 ]
Gonthier, Yves [1 ]
Luo, Lingai [1 ]
Wang, Shudong [2 ]
机构
[1] Univ Savoie, CNRS, UMR5271, LOCIE, F-73376 Savoie Technolac, Le Bourget Du L, France
[2] Chinese Acad Sci, Dalian Inst Chem Phys, Dalian Natl Lab Clean Energy, Dalian 116023, Peoples R China
[3] Chinese Acad Sci, Grad Sch, Beijing 100039, Peoples R China
关键词
Gas-liquid; Microchannel; Flow pattern; Physical properties; Regime map; Transition; MICROFABRICATED MULTIPHASE REACTORS; 2-PHASE FLOW; USER ACCEPTANCE; PLANT CONCEPTS; MASS-TRANSFER; TAYLOR FLOW; AIR-WATER; DIRECT FLUORINATION; REGIMES; HYDROGENATION;
D O I
10.1016/j.ces.2011.07.035
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
This paper presents an experimental investigation on influence of liquid physical properties and channel diameter on gas-liquid flow patterns in horizontal circular microchannels with inner diameters of 302, 496 and 916 mu m. Several liquids with different physical properties, i.e. water, ethanol, three sodium carboxymethyl cellulose (CMC) solutions (0.0464%, 0.1262%, 0.2446% CMC) and two sodium dodecyl sulfate (SDS) solutions (0.0608%, 0.2610% SDS) are chosen as working fluid and nitrogen as working gas. By using a high-speed photography system, flow patterns such as bubbly flow, slug and unstable slug flow, churn flow, slug-annular and annular flow are observed and identified on the flow regime maps. The results show that the liquid physical properties (viscosity and surface tension) and channel diameter affect the flow pattern transitions remarkably. Comparison with existing models in literature implies that these transitions cannot be well predicted. As a result, an effort is put into the proposition of a new empirical model taking the effects of channel size and liquid physical properties into account. (C) 2011 Elsevier Ltd. All rights reserved.
引用
收藏
页码:5791 / 5803
页数:13
相关论文
共 50 条
  • [31] Stratified Hydromagnetic Gas-Liquid Flow in a Wavy Channel
    Fatima, Ghulam
    Khan, Ambreen Afsar
    PUNJAB UNIVERSITY JOURNAL OF MATHEMATICS, 2024, 56 (06): : 315 - 333
  • [32] Gas-liquid crossing flow in microchannel and its application to gas analysis microchip
    Hachiya, H
    Tokeshi, M
    Yoshida, Y
    Kitamori, T
    PROCEEDINGS OF THE IEEE SENSORS 2004, VOLS 1-3, 2004, : 166 - 169
  • [33] Analysis of inner flow patterns in gas-liquid ejectors
    Wu, Wei-Feng
    Feng, Quan-Ke
    Xiang, Qing-Jiang
    Lu, Jun-Xian
    Hedongli Gongcheng/Nuclear Power Engineering, 2007, 28 (06): : 34 - 38
  • [34] IDENTIFICATION OF GAS-LIQUID STREAM FLOW PATTERNS.
    Khomyakov, G.D.
    Karataev, R.N.
    Kopyrin, M.A.
    Soviet Aeronautics (English translation of Izvestiya VUZ, Aviatsionnaya Tekhnika), 1982, 25 (02): : 109 - 112
  • [35] Effects of liquid physical properties on the forces acting on a pipe bend in gas-liquid slug flow
    Tay, BL
    Thorpe, RB
    CHEMICAL ENGINEERING RESEARCH & DESIGN, 2004, 82 (A3): : 344 - 356
  • [36] Experimental study of gas-liquid flow local characteristics in rectangular microchannel
    Bartkus, German
    XXXIII SIBERIAN THERMOPHYSICAL SEMINAR (STS-33), 2017, 115
  • [37] Development and Validation of a Computational Methodology to Model Mass Transfer in Gas-Liquid Taylor Flow in a Circular Microchannel
    Hussain, Mohammad Anzar
    Gupta, Raghvendra
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2024, 63 (32) : 14307 - 14325
  • [38] Gas-liquid two-phase flow in microchannel at elevated pressure
    Zhao, Yuchao
    Chen, Guangwen
    Ye, Chunbo
    Yuan, Quan
    CHEMICAL ENGINEERING SCIENCE, 2013, 87 : 122 - 132
  • [39] Gas-liquid Taylor flow pressure drop in rectangular meandering microchannel
    Liang Q.
    Ma X.
    Wang K.
    Chun J.
    Hao T.
    Lan Z.
    Wang Y.
    Huagong Xuebao/CIESC Journal, 2019, 70 (04): : 1272 - 1281
  • [40] Gas-Liquid Two-Phase Flow Evolution in a Long Microchannel
    Ide, Hideo
    Kimura, Ryuji
    Kawaji, Masahiro
    HEAT TRANSFER ENGINEERING, 2013, 34 (2-3) : 151 - 158