Numerical simulation of wall mass transfer rates in capillary-driven flow in microchannels

被引:13
|
作者
Cito, Salvatore [1 ,2 ]
Pallares, Jordi [1 ]
Fabregat, Alexandre [1 ]
Katakis, Ioanis [2 ]
机构
[1] Univ Rovira & Virgili, Dept Mech Engn, Tarragona 43007, Spain
[2] Univ Rovira & Virgili, Dept Chem Engn, Tarragona 43007, Spain
关键词
Capillary driven flow; Mass transfer; Microfluidics; Computational fluid dynamics; MOVING CONTACT LINE; RECTANGULAR MICROCHANNEL; DYNAMICS; KINETICS; MOTION; BLOOD; TUBES;
D O I
10.1016/j.icheatmasstransfer.2012.06.013
中图分类号
O414.1 [热力学];
学科分类号
摘要
Microchannels are believed to open up the prospect of precise control of fluid flow and chemical reactions. The high surface to volume ratio of micro size channels allows efficient mass transfer rates. The capillary effect can be used to pump fluids in microchannels and the flow generated can dissolve chemicals previously deposited on the walls of the channel. The purpose of this work is to analyze the wall mass transfer rates generated by a capillary driven flow in a microchannel. The results have implications in the optimization and design of devices for biological assays. We performed simulations of the capillary-driven flow in two-dimensional rectangular and circular microchannels by solving numerically the governing momentum and mass transfer equations with a second order accuracy finite volume code. The effects of the Reynolds number, of the contact angle and of the channel geometry on the time evolution of the local and averaged wall mass transfer rates are reported and analyzed. The flow field behind the meniscus, viewed from a reference frame moving at the velocity of the meniscus, showed to have two recirculations that enhance the wall mass transfer rates close to the triple point. A correlation between the Sherwood number and the Reynolds number, the contact angle and the time is reported. The correlation can be a useful tool for design purposes of microfluidic devices with capillary driven flows in which a fast heterogeneous reaction occurs on the wall. (C) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1066 / 1072
页数:7
相关论文
共 50 条
  • [1] Dynamics of Capillary-Driven Flow in Open Microchannels
    Yang, Die
    Krasowska, Marta
    Priest, Craig
    Popescu, Mihail N.
    Ralston, John
    JOURNAL OF PHYSICAL CHEMISTRY C, 2011, 115 (38): : 18761 - 18769
  • [2] Enhanced capillary-driven flow in closed hierarchical microchannels
    Kumar, Gaurav
    Nagayama, Gyoko
    PHYSICS OF FLUIDS, 2025, 37 (02)
  • [3] Optimization for ultrafast capillary-driven flow in open rectangular microchannels
    Bao, Jianchen
    Nagayama, Gyoko
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2023, 201
  • [4] Dynamics of Capillary-Driven Flow in 3D Printed Open Microchannels
    Lade, Robert K., Jr.
    Hippchen, Erik J.
    Macosko, Christopher W.
    Francis, Lorraine F.
    LANGMUIR, 2017, 33 (12) : 2949 - 2964
  • [5] Inititiation, Flow Rate, and Routing of Capillary-Driven Flow of Liquid Moving through Microchannels on a Slipchip
    Pompano, Rebecca R.
    Platt, Carol E.
    Karymov, Mikhail A.
    Ismagilov, Rustem F.
    BIOPHYSICAL JOURNAL, 2012, 102 (03) : 187A - 187A
  • [6] Kinematical behaviour of capillary-driven nematic flow in polydimethylsiloxane microchannels: The effects of the dimensions of the channels
    Zheng, Wenjun
    EPL, 2017, 118 (05)
  • [7] Capillary-driven flow in corner geometries
    Kubochkin, Nikolai
    Gambaryan-Roisman, Tatiana
    CURRENT OPINION IN COLLOID & INTERFACE SCIENCE, 2022, 59
  • [8] On the numerical study of capillary-driven flow in a 3-D microchannel model
    Lee, C.T.
    Lee, C.C.
    CMES - Computer Modeling in Engineering and Sciences, 2015, 104 (05): : 375 - 403
  • [9] Dynamics of capillary-driven liquid-liquid displacement in open microchannels
    Yang, D.
    Krasowska, M.
    Priesta, C.
    Ralston, J.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2014, 16 (44) : 24473 - 24478
  • [10] On the Numerical Study of Capillary-driven Flow in a 3-D Microchannel Model
    Lee, C. T.
    Lee, C. C.
    CMES-COMPUTER MODELING IN ENGINEERING & SCIENCES, 2015, 104 (05): : 375 - 403