ZHAO Xiao-ling, YANG Da-yong, WANG Yang. Analysis of the Heat and Mass Transfer Process and Entropy in Electroosmotic Flow[J]. Applied Mathematics and Mechanics, 2017, 38(3): 310-320. doi: 10.21656/1000-0887.370182
Citation: ZHAO Xiao-ling, YANG Da-yong, WANG Yang. Analysis of the Heat and Mass Transfer Process and Entropy in Electroosmotic Flow[J]. Applied Mathematics and Mechanics, 2017, 38(3): 310-320. doi: 10.21656/1000-0887.370182

Analysis of the Heat and Mass Transfer Process and Entropy in Electroosmotic Flow

doi: 10.21656/1000-0887.370182
Funds:  The National Natural Science Foundation of China(11302095)
  • Received Date: 2016-06-07
  • Rev Recd Date: 2016-08-17
  • Publish Date: 2017-03-15
  • The heat and mass transfer process in microchannels was analyzed with constant heat flux through the wall. In the numerical calculation model, the electric double layer potential, velocity, ion concentration and temperature distribution were characterized with the Poisson-Boltzmann equation, the Navier-Stokes equation, the Nernst-Planck equation and the energy equation, respectively. The effects of different flow parameters on each thermal index in the heat and mass transfer process were investigated by means of the entropy generation, and the influences of important flow parameters on the total entropy generation and the proportion of each thermal effect were discussed in detail. The results reveal that, the increases of the kinetic parameters and the Joule heating coefficient weaken the heat transfer performance, and the influence of the kinetic parameters is more evident. The total entropy of the flow is an increasing function of the kinetic parameters, the mass transfer coefficient and the mass dispersion coefficient.
  • loading
  • [1]
    林炳承, 秦建华. 微流控芯片实验室[M]. 北京: 科学出版社, 2006.(LIN Bing-cheng, QIN Jian-hua. Microfluidic Chip Laboratory [M]. Beijing: Science Press, 2006.(in Chinese))
    [2]
    林炳承. 图解微流控芯片实验室[M]. 北京: 科学出版社, 2008.(LIN Bing-cheng. Graphic Microfluidic Chip Laboratory [M]. Beijing: Science Press, 2008.(in Chinese))
    [3]
    Mala G M, Li D, Dale J D. Heat transfer and fluid flow in microchannels[J]. International Journal of Heat and Mass Transfer,1997,40(13): 3079-3088.
    [4]
    Xuan X, Xu B, Sinton D, et al. Electroosmotic flow with Joule heating effects[J]. Lab on A Chip,2004,4(3): 230-236.
    [5]
    Maynes D, Webb B W. The effect of viscous dissipation in thermally fully-developed electro-osmotic heat transfer in microchannels[J]. International Journal of Heat and Mass Transfer,2004,47(5): 987-999.
    [6]
    Tang G Y, Yang C, Chai C K, et al. Numerical analysis of the thermal effect on electroosmotic flow and electrokinetic mass transport in microchannels[J]. Analytica Chimica Acta,2004,507(1): 27-37.
    [7]
    Bejan A. The thermodynamic design of heat and mass transfer processes and devices[J].International Journal of Heat and Fluid Flow,1987,8(4): 258-276.
    [8]
    Shamshiri M, Khazaeli R, Ashrafizaadeh M, et al. Heat transfer and entropy generation analyses associated with mixed electrokinetically induced and pressure-driven power-law microflows[J]. Energy,2012,42(1): 157-169.
    [9]
    Guo J, Xu M, Cai J, et al. Viscous dissipation effect on entropy generation in curved square microchannels[J]. Energy,2011,36(8): 5416-5423.
    [10]
    Ibáez G, López A, Pantoja J, et al. Optimum slip flow based on the minimization of entropy generation in parallel plate microchannels[J]. Energy,2013,50(1):1926-1937.
    [11]
    Matin M H, Khan W A. Entropy generation analysis of heat and mass transfer in mixed electrokinetically and pressure driven flow through a slit microchannel[J]. Energy,2013,56(56): 207-217.
    [12]
    李战华, 吴健康, 胡国庆, 等. 微流控芯片中的流体流动[M]. 北京: 科学出版社, 2012.( LI Zhan-hua, WU Jian-kang, HU Guo-qing, et al. Fluid Flow in Microfluidic Chip [M]. Beijing: Science Press, 2012.(in Chinese))
    [13]
    Sadeghi A, Saidi M H. Viscous dissipation effects on thermal transport characteristics of combined pressure and electroosmotically driven flow in microchannels[J]. International Journal of Heat & Mass Transfer,2010,53(19/20): 3782-3791.
    [14]
    Sadeghi A, Yavari H, Saidi M H, et al. Mixed electroosmotically and pressure driven flow with temperature dependent properties[J]. Journal of Thermophysics & Heat Transfer,2011,25(3): 432-442.
    [15]
    杨大勇, 王阳. 微通道中电渗流及微混合的离子浓度效应[J]. 应用数学和力学, 2015,36(9): 981-989.(YANG Da-yong, WANG Yang. The effect of ion concentration on the electro osmotic flow and micro mixing in micro channel[J]. Applied Mathematics and Mechanics,2015,36(9): 981-989.(in Chinese))
    [16]
    Bejan A. The thermodynamic design of heat and mass transfer processes and devices[J]. International Journal of Heat and Fluid Flow,1987,8(4): 258-276.
    [17]
    San J Y, Worek W M, Lavan Z. Entropy generation in combined heat and mass transfer[J]. International Journal of Heat and Mass Transfer,1987,30(7): 1359-1369.
    [18]
    Yavari H, Sadeghi A, Saidi M H, et al. Combined influences of viscous dissipation, non-uniform Joule heating and variable thermophysical properties on convective heat transfer in microtubes[J]. International Journal of Heat & Mass Transfer,2012,55(4): 762-772.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (1029) PDF downloads(1071) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return