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Numerical simulation of bubble characteristics in bubble columns with different liquid viscosities and surface tensions using a CFD-PBM coupled model

机译:使用CFD-PBM耦合模型对不同液体粘度和表面张力的气泡特性的数值模拟

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摘要

Most liquids in gas-liquid phase reactions are organic solvents; hence, it is particularly important to study the effect of liquid properties on fluid dynamic parameters in bubble columns. In this study, the correction of surface tension and viscosity were used to determine the influence of different liquid properties on the hydrodynamic parameters of bubble columns. These were implemented based on the minimum energy model proposed by Li (Li et al., 1999; Li and Kwauk, 2003; Xu and Li, 1998), our previous work (Zhang et al., 2018), the drag model of atmospheric pressure from Xiao et al. (2017) and that from Yan et al. (2019). According to previous studies (Syed et al., 2017), because liquid properties significantly influence the bubble size distribution in a bubble column, the density correction term and gas holdup of large bubbles were utilized to optimize the coalescence coefficient (Ce). Computational fluid dynamics coupled with the population balance model were used to simulate the effects of liquid viscosities and liquid surface tensions on the hydrodynamic parameters of the bubble column. The simulation results showed that when the liquid viscosity or surface tension increases, there is a higher probability of coalescence between two bubbles, resulting in the formation of a large bubble. The collision of large bubbles with turbulent eddies can increase the energy required to break up large bubbles into small ones; large bubbles in a bubble column are more stable, and the gas holdup of large bubbles increase. Moreover, the gas holdup of small bubbles, total gas holdup in the bubble column, and contact area between gas and liquid in the bubble column decrease, which leads to the decrease of the mass and heat transfers between the two phases. (C) 2019 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:气液相反应中的大多数液体是有机溶剂;因此,研究液体性质对气泡塔中流体动力学参数的影响尤为重要。在该研究中,使用表面张力和粘度的校正来确定不同液体性质对泡沫柱的流体动力学参数的影响。这些是基于Li(Li等,1999; Li和Kwauk,2003; Xu和Li,1998),我们之前的工作(张等人,2018),大气拖模的最低能源模型实施Xiao等人的压力。 (2017)而且来自Yan等人。 (2019)。根据先前的研究(Syed等,2017),因为液体性质显着影响气泡塔中的气泡尺寸分布,利用大气泡的密度校正项和气体保持优化聚结系数(CE)。耦合与人口平衡模型的计算流体动力学用于模拟液体粘度和液面张力对泡沫柱的流体动力学参数的影响。仿真结果表明,当液体粘度或表面张力增加时,两个气泡之间的聚结的概率较高,导致形成大气泡。大气泡与湍流漩涡的碰撞可以增加将大气泡分成小泡沫所需的能量;泡泡柱中的大气泡更稳定,大气泡的气体持有增加。此外,小气泡的气体保持,气泡塔中的总气体保持,气泡塔中的气体和液体之间的接触面积降低,这导致了两相之间的质量和热转移的降低。 (c)2019化学工程师机构。 elsevier b.v出版。保留所有权利。

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    Beijing Inst Petrochem Technol Dept Chem Engn Key Lab Fuels Cleaning &

    Adv Catalyt Emiss Reduct Beijing 102617 Peoples R China;

    Beijing Inst Petrochem Technol Dept Chem Engn Key Lab Fuels Cleaning &

    Adv Catalyt Emiss Reduct Beijing 102617 Peoples R China;

    Beijing Inst Petrochem Technol Dept Chem Engn Key Lab Fuels Cleaning &

    Adv Catalyt Emiss Reduct Beijing 102617 Peoples R China;

    Beijing Inst Petrochem Technol Dept Chem Engn Key Lab Fuels Cleaning &

    Adv Catalyt Emiss Reduct Beijing 102617 Peoples R China;

    Beijing Inst Petrochem Technol Dept Chem Engn Key Lab Fuels Cleaning &

    Adv Catalyt Emiss Reduct Beijing 102617 Peoples R China;

    Beijing Inst Petrochem Technol Dept Chem Engn Key Lab Fuels Cleaning &

    Adv Catalyt Emiss Reduct Beijing 102617 Peoples R China;

    Beijing Inst Petrochem Technol Dept Chem Engn Key Lab Fuels Cleaning &

    Adv Catalyt Emiss Reduct Beijing 102617 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    Bubble column; CFD-PBM; Viscosity; Surface tension; Gas holdup; Large bubbles;

    机译:泡泡柱;CFD-PBM;粘度;表面张力;气体持有;大气泡;

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