Study on the Flow and Heat Transfer Characteristics of Micro-Scale Droplets and Fluid on Dynamic Liquid Film Condition by Lattice Boltzmann Method

Yichao He, Yan Li, Z. Ding, Han Yuan, N. Mei
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Abstract

The lab on a chip is of great value in the analytical chemistry, biology and pharmacy. So that it is very important to study the formation and control of droplet in chips. The fluid flowing under the condition of dynamic liquid film is researched innovatively in this paper. Its inspiration is derived from bionics (fish skin, etc.), which has a broad application prospect in reducing the resistance in water and weakening the heat transfer. Dynamic liquid film refers to the dynamic thin liquid layer with the hydrophilic property on the surface of wall under the pressure of outside fluid flow. The insolubility between liquid film and fluid creates a relatively stable flowing environment. In this paper, the formation and influencing factors of the droplet in the microfluidic chip are studied by the Lattice Boltzmann method (LBM), and the flow and heat transfer characteristics of fluid in microchannel is studied with microfluidic chip as the carrier under the condition of insoluble dynamic liquid film existing on the wall surface. LBM has certain advantages in boundary processing, parallel operation and tracing phase interface automatically. Using SC model of LBM (for two component flow), the process of formation and movement of the droplet in microfluidic chip are simulated numerically after verified by Laplace‘s law. The result shows that the hydrophobic characteristics between the discrete phase and the wall surface and increased flow rate of the continuous phase will decrease the droplets’ volume and increase the producing frequency. In addition, the fluid flow in the microchannel is simulated under the condition of insoluble dynamic liquid film on the wall surface. The simulation result shows that when the fluid flow rate increases, the friction loss decreases and the heat transfer capacity decreases with the existence of the liquid film. The lower the dissolution trend between fluid and liquid film is, the greater the variation trend of fluid parameters will be. By comparing the results of experiment and simulation, the consistent results are obtained.
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用晶格玻尔兹曼方法研究微尺度液滴和流体在动态液膜条件下的流动和传热特性
芯片实验室在分析化学、生物学和药学等领域具有重要的应用价值。因此,研究芯片中液滴的形成与控制具有十分重要的意义。本文创新性地研究了流体在动态液膜条件下的流动。其灵感来源于仿生学(鱼皮等),在降低水中阻力、弱化传热等方面有着广阔的应用前景。动态液膜是指在外界流体流动压力作用下,壁表面具有亲水性的动态薄液层。液膜与流体之间的不溶性创造了一个相对稳定的流动环境。本文采用格子玻尔兹曼方法(Lattice Boltzmann method, LBM)研究了微流控芯片中液滴的形成及影响因素,研究了壁面存在不溶性动态液膜条件下,以微流控芯片为载体的微通道中流体的流动及换热特性。LBM在边界处理、并行运算和相位界面自动跟踪等方面具有一定的优势。采用双组分流的SC模型,对微流控芯片中液滴的形成和运动过程进行了数值模拟,并得到拉普拉斯定律的验证。结果表明,离散相与壁面之间的疏水特性和连续相流速的增加将减小液滴的体积,提高液滴的产生频率。此外,还模拟了壁面不溶动液膜条件下微通道内的流体流动。仿真结果表明,当流体流量增大时,由于液膜的存在,摩擦损失减小,换热能力减小。流体与液膜的溶解趋势越低,流体参数的变化趋势越大。将实验结果与仿真结果进行了比较,得到了一致的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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