Numerical simulation of mass transfer dynamics in Taylor flows

被引:20
作者
Butler, Colin [1 ,2 ,3 ]
Cid, Emmanuel [1 ,2 ,3 ]
Billet, Anne-Marie [1 ,2 ,3 ]
Lalanne, Benjamin [1 ,2 ,3 ]
机构
[1] CNRS, Lab Genie Chim, F-75700 Paris, France
[2] Univ Toulouse, Toulouse, France
[3] CNRS, Federat Rech FERMAT, Toulouse, France
关键词
Taylor flow; Bubbles; Direct numerical simulation; Level-Set method; Ghost fluid method; Mass transfer coefficient; Local transfer mechanisms; BUBBLE-TRAIN FLOW; HEAT-TRANSFER; GAS-BUBBLES; SET METHOD; SLUG FLOW; LIQUID; FLUID; DEPOSITION; EQUATION; VELOCITY;
D O I
10.1016/j.ijheatmasstransfer.2021.121670
中图分类号
O414.1 [热力学];
学科分类号
摘要
Direct Numerical Simulations of mass transfer within Taylor flows are carried out using the periodic unit cell approach by means of the Level-Set method, under the axisymmetric assumption. The considered cases are based on the experimental study of Butler et al. [1] (absorption of gaseous species) for bubbles of Reynolds numbers Re-b > 200 and capillary numbers Ca > 10(-3). Firstly, the hydrodynamics of five cases are calculated up to steady state, after which the bubble shape, lubrication film thickness and velocity profiles are compared to experimental and theoretical results. Using these converged hydrodynamics, the transient mass transfer between the gas and liquid phases is then simulated, assuming no change in bubble volume. The Peclet number Pe is varied between 10 and 900 by changing the diffusion coefficient, allowing for new insight into local phenomena of mass transfer. In this way, the maximal transfer fluxes at the interface are observed to be (i) close to the stagnation point at the film entrance, and (ii) at the rear cap where the tangential velocity is greatest. As once as the mass transfer coefficient becomes constant, the fluxes across the part of the interface in contact with the film and around the bubble caps are each characterised by a local Sherwood number. The latter evolves by root Pe(film) across the film and is found to be predictable by a simple model when Pe(film) > 1 , where Pe(film) is the film Peclet number. Concerning the caps, it evolves by root Pe but only in a finite range of Pe , contrary to the common assumption of similarity of transfer around the caps with that around a rising unconfined spherical bubble. Such local analyses could be further used in multizone models of mass transfer for Taylor flows. Finally, a correlation is proposed to scale the global Sherwood number Sh(infinity) far from channel inlet, defined as a function of both a Peclet number Pe(R) based on the relative velocity between the bubble and the two-phase flow, and the gas volume fraction in the unit cell. Its predictions are discussed against experimental results at much higher Peclet numbers, after showing that Sh(infinity) is independent on the initial concentration distribution in the liquid (the latter being sensitive to the injection conditions in experiments). (c) 2021 Elsevier Ltd. All rights reserved.
引用
收藏
页数:19
相关论文
共 56 条
[1]   On the combined effects of surface tension force calculation and interface advection on spurious currents within Volume of Fluid and Level Set frameworks [J].
Abadie, T. ;
Aubin, J. ;
Legendre, D. .
JOURNAL OF COMPUTATIONAL PHYSICS, 2015, 297 :611-636
[2]   Simulation of the slug flow of a gas-liquid system in capillaries [J].
Abiev, R. Sh. .
THEORETICAL FOUNDATIONS OF CHEMICAL ENGINEERING, 2008, 42 (02) :105-117
[3]   Mass transfer characteristics and concentration field evolution for gas-liquid Taylor flow in milli channels [J].
Abiev, R. Sh ;
Butler, C. ;
Cid, E. ;
Lalanne, B. ;
Billet, A-M .
CHEMICAL ENGINEERING SCIENCE, 2019, 207 :1331-1340
[4]   Bubbles velocity, Taylor circulation rate and mass transfer model for slug flow in milli- and microchannels [J].
Abiev, R. Sh. .
CHEMICAL ENGINEERING JOURNAL, 2013, 227 :66-79
[5]   Gas-liquid and gas-liquid-solid mass transfer model for Taylor flow in micro (milli) channels: A theoretical approach and experimental proof [J].
Abiev, Rufat Sh. .
CHEMICAL ENGINEERING JOURNAL ADVANCES, 2020, 4
[6]   Accurate hydrogenated vegetable oil viscosity predictions for monolith reactor simulations [J].
Albrand, Pierre ;
Julcour, Carine ;
Gerbaud, Vincent ;
Billet, Anne-Marie .
CHEMICAL ENGINEERING SCIENCE, 2020, 214
[7]   A partial differential equation approach to multidimensional extrapolation [J].
Aslam, TD .
JOURNAL OF COMPUTATIONAL PHYSICS, 2004, 193 (01) :349-355
[8]   Quick deposition of a fluid on the wall of a tube [J].
Aussillous, P ;
Quéré, D .
PHYSICS OF FLUIDS, 2000, 12 (10) :2367-2371
[9]   The role of gas bubbles and liquid slug lengths on mass transport in the Taylor flow through capillaries [J].
Bercic, G ;
Pintar, A .
CHEMICAL ENGINEERING SCIENCE, 1997, 52 (21-22) :3709-3719
[10]  
Boussinesq J., 1905, J MATH PURE APPL, V6, P285