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Numerical Simulation and Experimental Validation of Liquid Metal Droplet Formation in a Co-Flowing Capillary Microfluidic Device

机译:共流毛细管微流控装置中液态金属液滴形成的数值模拟和实验验证

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摘要

A two-phase flow axisymmetric numerical model was proposed to understand liquid metal droplet formation in a co-flowing capillary microfluidics device based on a phase field model. The droplet detachment processes were observed in the experiment and are in good agreement with the simulation method. The effects of the viscosities and flowrates of the continuous phase fluid, interfacial tension as well as the wetting property of the metallic needle against the bulk liquid metal on the droplet formation and production rate were numerically investigated. It was found that the droplet diameter decreased with the increment of the viscosities and flowrates of the outer phase carrier fluid. The dispersed phase fluid with high interfacial tension tended to prolong the time for equilibrium between the viscous drag force and interfacial tension on the liquid–liquid fluid surface, delaying the droplet to be pinched off from the capillary orifice and causing large droplet diameter. Finally, the wetting performance of the metallic needle against the liquid metal was explored. The result indicate that the droplet diameter became less dependent on the contact angle while the size distribution of the liquid metal droplet was affected by their wetting performance. A more hydrophilic wetting performance were expected to prepare liquid metal droplet with more monodispersity. The numerical model and simulation results provide the feasibility of predicting the droplet formation with a high surface tension in a glass capillary microfluidic device.
机译:提出了两相流轴对称数值模型,以了解基于相场模型的共流毛细管微流控装置中液态金属液滴的形成。实验中观察到了液滴的脱落过程,与模拟方法吻合良好。数值研究了连续相流体的粘度和流量,界面张力以及金属针对大块液态金属的润湿性对液滴形成和生产率的影响。发现液滴直径随着外相载体流体的粘度和流速的增加而减小。具有高界面张力的分散相流体往往会延长粘滞阻力与液-液流体表面界面张力之间达到平衡的时间,从而延迟了液滴从毛细管孔中被挤压而导致较大的液滴直径。最后,探讨了金属针对液态金属的润湿性能。结果表明,液滴直径变得越来越不受接触角的影响,而液态金属液滴的尺寸分布则受其润湿性能的影响。期望具有更亲水的润湿性能以制备具有更高单分散性的液态金属滴。数值模型和仿真结果提供了预测玻璃毛细管微流体装置中具有高表面张力的液滴形成的可行性。

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