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电场对协流式微流控装置中乳液液滴生成行为的调控机理
引用本文:李蕾,张程宾. 电场对协流式微流控装置中乳液液滴生成行为的调控机理[J]. 物理学报, 2018, 67(17): 176801-176801. DOI: 10.7498/aps.67.20180616
作者姓名:李蕾  张程宾
作者单位:东南大学能源与环境学院, 能源热转换及其过程测控教育部重点实验室, 南京 210096
基金项目:国家自然科学基金委员会-中国工程物理研究院NSAF联合基金(批准号:U1530260)、国家自然科学基金(批准号:51776037)和江苏省自然科学基金(批准号:BK20170082)资助的课题.
摘    要:建立了直流电场作用下协流式微流控装置中单乳液液滴乳化生成过程的非稳态理论模型,并开展了数值模拟研究,揭示了电场对液滴乳化生成动力学行为的调控机理,阐明了流场/电场参数对液滴乳化生成特性的影响规律.研究结果表明:沿流体流动方向施加静电场可在电物性参数不同的两相流体界面法线方向上产生指向内相流体的电场力,进而强化了内相流体界面的颈缩和断裂,提升了液滴生成速率和形变程度,减小了液滴生成尺寸;在同一毛细数下,随着电毛细数的增大,乳液乳化流型由每周期仅有单一液滴生成的滴式流型转变为每周期有一个主液滴并伴随有卫星液滴生成的滴式流型;随着毛细数和电毛细数的增大,黏性拖曳力以及电场力作用增强,使内相流体颈缩过程后期更容易形成细长型液线,从而有助于诱发液线上产生Rayleigh-Plateau不稳定现象,继而促进卫星液滴的形成.

关 键 词:微流控  液滴  乳化生成  电场调控
收稿时间:2018-04-08

Mechanism for regulation and control of emulsion droplet generation in co-flow microfluidic device via electric field
Li Lei,Zhang Cheng-Bin. Mechanism for regulation and control of emulsion droplet generation in co-flow microfluidic device via electric field[J]. Acta Physica Sinica, 2018, 67(17): 176801-176801. DOI: 10.7498/aps.67.20180616
Authors:Li Lei  Zhang Cheng-Bin
Affiliation:Key Laboratory of Energy Thermal Conversion and Control, Ministry of Education, School of Energy and Environment, Southeast University, Nanjing 210096, China
Abstract:Applying the active control of electric field to the preparation of micro-droplets via the traditional microfluidic technology has attracted great attention because it can effectively improve the controllability of the preparing process. Therefore, a full understanding of mechanism for the regulation and control of microdroplets's generation by the microfluidic technology and electric field will provide interesting possibilities for the active control of producing required microdroplets in the practical applications. A transient theoretical model is developed via the coupling of phase-field method and electrostatic model to numerically investigate the generation of the single-phase droplets in a co-flow microfluidic device under the control of a uniform direct-current electric field. Via the numerical simulations based on the transient model, the control mechanisms of the electric field on dynamic behaviors of the droplets generation are revealed, and the influences of flow and electric parameters on the droplets generation characteristics are elucidated. The results indicate that the electrostatic field is able to generate an electric field force toward the inner phase fluid in the normal direction of the interface between two-phase fluids with different electric parameters. The electric field force enhances the necking and breaking of the inner fluid interface, which accelerates the droplets' generation, increases droplet deformation degree, and reduces droplet size. As the electric capillary number increases under the same hydrodynamic capillary number, the droplet formation pattern is transformed from dripping regime with only a single droplet formed per cycle to another dripping regime with one main droplet formed together with the following satellite droplets per cycle. In addition, according to the numerical results in this work, we organize a regime diagram to quantitatively represent the respective regime of these two flow patterns as a function of hydrodynamic capillary number and electric capillary number. The regime diagram indicates that with the increase in hydrodynamic capillary number and electric capillary number, the viscous drag force and electric field force are strengthened, which induces the formation of a slender liquid thread of inner fluid at the later stage of the necking process. This contributes to triggering the Rayleigh-Plateau instability on the liquid thread of inner fluid, and thus facilitating the generation of satellite droplets via the breakup of the liquid thread.
Keywords:microfluidics  droplets  emulsification and generation  electric control
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