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Numerical investigation on the velocity fields during droplet formation in a microfluidic T-junction

机译:微流体T形结中液滴形成过程中速度场的数值研究

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In this paper, we present the findings from a numerical investigation of the droplet formation process in a T-junction microchannel. A volume-of-fluid (VOF) model that is refined with smoothing operations was used to minimise spurious or non-physical velocities at the micro-scale, in order to obtain more accurate velocity results from the microchannel simulations. The model was validated with experimental results and was able to yield a closer match to the experimental data compared to the standard VOF model. Subsequently the refined VOF model was used to investigate the velocity field evolution during the droplet formation process to further understand the underlying physics. For the squeezing regime, we observed regions of large recirculation after droplet break-up with reversed flows. These recirculation regions were also seen in the transition and dripping regimes but reversed flows did not occur. We also studied the effects of varying the dispersed phase flow rate under a constant capillary number (Ca) of the continuous phase. The results show that increasing the dispersed phase flow increases the droplet length and formation frequency. In addition, the frequency of the velocity fluctuation at the junction vicinity was found to coincide with the rate of new droplet formation. Finally, the effects of Weber number on droplet length was also investigated and it was found that inertial forces significantly influence droplet formation, albeit being the least dominant force. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在本文中,我们介绍了在T型结微通道中液滴形成过程的数值研究结果。为了通过微通道仿真获得更准确的速度结果,使用了通过平滑操作改进的流体体积(VOF)模型来最小化微尺度上的杂散或非物理速度。该模型已通过实验结果验证,并且与标准VOF模型相比,能够与实验数据更匹配。随后,使用改进的VOF模型研究液滴形成过程中的速度场演变,以进一步了解基础物理学。对于挤压方式,我们观察到液滴反向流动后破裂后的大回流区域。在过渡和滴落状态下也可以看到这些回流区域,但没有发生逆流。我们还研究了在连续相的恒定毛细管数(Ca)下改变分散相流速的影响。结果表明,增加分散相流会增加液滴长度和形成频率。另外,发现在接合点附近的速度波动的频率与新液滴形成的速率一致。最后,还研究了韦伯数对液滴长度的影响,发现惯性力显着影响液滴的形成,尽管是最小的主导力。 (C)2015 Elsevier Ltd.保留所有权利。

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