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Internal flow during mixing induced in acoustically levitated droplets by mode oscillations

机译:通过模式振荡在声学悬浮液滴中诱导的混合期间的内部流动

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In this paper, we describe a mixing method with mode oscillation on the internal flow field of a levitated droplet. The effect of internal flow on the mixing performance of droplets acoustically levitated via ultrasonic phased arrays remains unclear. To better understand the mixing mechanism of a levitated droplet, clarifying the effect of the internal flow field on droplet mixing from mode oscillation during acoustic levitation is necessary. We used a 50 wt. % glycerol aqueous solution with 6th mode oscillation. We applied particle image velocimetry (PIV) to study the internal flow fields under interfacial oscillation. The PIV results indicated that the visualized flow field enhanced mixing performance with increasing Reynolds number. We demonstrated the nonlinear characteristics of droplet mixing compared to potential flow. The nonlinearity of the droplet oscillation was driven by the nonlinear acoustic field exerted on the levitated droplet. Mode oscillation on the droplet surface induced a pressure gradient and caused internal flow in the droplet. The pressure gradient in the droplet from the interfacial oscillation was quantitatively analyzed. Pressure induced by the interfacial oscillation, which can be roughly ten times larger than the hydrostatic pressure in the droplet, drastically enhanced the mixing performance in the droplet. Our experimental findings provide deeper physical insights into noncontact fluid manipulation for potential lab-in-a-drop applications. Published under license by AIP Publishing.
机译:在本文中,我们描述了一种在悬浮液滴的内部流场上的模式振荡的混合方法。内部流对通过超声相位阵列声学浮出的液滴混合性能的影响仍不清楚。为了更好地理解悬浮液滴的混合机理,阐明了内部流场对声悬浮期间从模式振荡的液滴混合的效果。我们使用了50倍。具有第6型模式振荡的%甘油水溶液。我们应用了粒子图像速度(PIV)以研究界面振荡下的内部流场。 PIV结果表明,可视化流场随着雷诺数的增加而增强了混合性能。与潜在流程相比,我们证明了液滴混合的非线性特征。液滴振荡的非线性由施加在悬浮液滴上的非线性声学场驱动。液滴表面上的模式振荡诱导压力梯度并导致液滴中的内部流动。从界面振荡中的液滴中的压力梯度定量分析。由界面振荡引起的压力,其可以大约比液滴中的静液压压力大的大约十倍,大大提高了液滴中的混合性能。我们的实验结果对潜在的实验室内容应用的非接触式流体操作提供了更深的身体洞察。通过AIP发布在许可证下发布。

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    《Physics of fluids》 |2019年第11期|共7页
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  • 正文语种 eng
  • 中图分类 流体力学;
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