Bubbles size and mass transfer in a pulsating flow type apparatus with gas-liquid mixture

被引:0
|
作者
R. Sh. Abiev
A. S. Galushko
机构
[1] St. Petersburg State Institute of Technology (Technical University),Department of optimization of chemical and biotechnological equipment
来源
Journal of Flow Chemistry | 2021年 / 11卷
关键词
Pulsating flow type apparatus; Hydrodynamics; Mass transfer; Energy dissipation rate; Bubble size; Process intensification;
D O I
暂无
中图分类号
学科分类号
摘要
Hydrodynamics of pulsating flow type apparatus (PFA), namely bubble disintegration, as well as interfacial mass transfer were investigated experimentally analysed theoretically. Influence of several mechanisms on bubble sizes is studied: Kelvin–Helmholtz and Rayleigh–Taylor instabilities, turbulence in the bulk of liquid and near walls of apparatus, dynamic and inertial mechanisms as well as high shear stresses. It was found that the dependence of gas bubble size on energy dissipation rate in PFA, static mixers and stirred tank reactors with Rushton turbine are described by the same exponential equation, and they have comparable parameters. However, each type of the mixers has limitation of energy dissipation rate: ε = 0.5–3 W/kg for baffled agitated tanks; ε = 20–200 W/kg for static mixers, and 30–5000 W/kg for PFA. Due to the intensive mass transfer from/to the bubbles surface as well as high interfacial area induced by several mechanisms of bubbles disintegration, high values of kLa were achieved. Hence, PFA could be recommended as a promising replacement of traditional reactors like stirrers or other kinds of flow type reactors like tubular turbulent apparatus or oscillated baffle reactors (OBRs), Buss loop reactor, Plunging jet absorber, especially for the fast and ultrafast reactions (hydrogenation, chlorination, amination, alkylation, carbonylation, oxidation, ethoxylation, etc.) and other processes (and with recycling for slower reactions). In combination with the tank reactors the PFA could be used as an alternative for the reactors for the processes where long residence time is necessary (e.g. for bioreactions).
引用
收藏
页码:369 / 391
页数:22
相关论文
共 50 条
  • [41] Gas-liquid flow and mass transfer in a microchannel under elevated pressures
    Yao, Chaoqun
    Dong, Zhengya
    Zhao, Yuchao
    Chen, Guangwen
    [J]. CHEMICAL ENGINEERING SCIENCE, 2015, 123 : 137 - 145
  • [42] Gas-liquid reaction and mass transfer in microstructured coiled flow inverter
    Kurt, Safa Kutup
    Warnebold, Fabian
    Nigam, Krishna D. P.
    Kockmann, Norbert
    [J]. CHEMICAL ENGINEERING SCIENCE, 2017, 169 : 164 - 178
  • [43] Extents of Reaction, Mass Transfer and Flow for Gas-Liquid Reaction Systems
    Bhatt, Nirav
    Amrhein, Michael
    Bonvin, Dominique
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2010, 49 (17) : 7704 - 7717
  • [44] Modeling of hydrodynamics and mass transfer in countercurrent polydisperse gas-liquid flow
    Naumov, VA
    [J]. THEORETICAL FOUNDATIONS OF CHEMICAL ENGINEERING, 2001, 35 (04) : 335 - 340
  • [45] Hydrodynamics and mass transfer in gas-liquid flow through static mixers
    Heyouni, A
    Roustan, M
    Do-Quang, Z
    [J]. CHEMICAL ENGINEERING SCIENCE, 2002, 57 (16) : 3325 - 3333
  • [46] Gas-Liquid Mass Transfer in Taylor Flow through Circular Capillaries
    Liu, Dingsheng
    Wang, Shudong
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2011, 50 (04) : 2323 - 2330
  • [47] GAS-LIQUID MASS-TRANSFER IN TAYLOR FLOW THROUGH A CAPILLARY
    IRANDOUST, S
    ERTLE, S
    ANDERSSON, B
    [J]. CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 1992, 70 (01): : 115 - 119
  • [48] Modeling investigation of mass transfer of gas-liquid concurrent flow processes
    Tan, J.
    Lu, Y. C.
    Xu, J. H.
    Luo, G. S.
    [J]. SEPARATION AND PURIFICATION TECHNOLOGY, 2013, 109 : 77 - 86
  • [49] Modeling of hydrodynamics and mass transfer in countercurrent polydisperse gas-liquid flow
    Naumov, V.A.
    [J]. Teoreticheskie Osnovy Khimicheskoi Tekhnologii, 2001, 35 (04): : 355 - 360
  • [50] Research progress on gas-liquid flow and mass transfer characteristics in microchannels
    Yuan L.
    Cong H.
    Li X.
    [J]. Huagong Jinzhan/Chemical Industry and Engineering Progress, 2024, 43 (01): : 34 - 48