Containerless emulsification of acoustically levitated composite drop

IF 9.1
Droplet Pub Date : 2025-03-24 DOI:10.1002/dro2.70005
Mengchen Cui, Hongyue Chen, Xiuxing Tang, Yutong Guo, Xianyu Nong, Changlin Ding, Zhijun Wang, Xin Gao, Duyang Zang
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引用次数: 0

Abstract

Emulsions are inherently thermodynamically unstable dispersions that are widely involved in food processing, cosmetic preparation, and drug delivery. The existing ultrasonic emulsification techniques mainly rely on the direct contact between the sonicator probe and liquids, which causes localized high temperature and pressure within the liquid and influences the final properties of the obtained emulsion. In this work, a containerless emulsification approach has been realized by using ultrasonic levitation. The emulsification of water‒oil system can be promoted by adjusting the emitter‒reflector distance to alter the acoustic radiation pressure on the surface of the levitated drop. The dynamic behaviors of the emulsification process were monitored by using a high-speed camera, and the sound field was analyzed via numerical simulation. The experimental results showed that atomization of droplets driven by sound field was the main driving force for emulsification. This method can be used to prepare emulsions in which the average diameter of the droplets was about 2–3 µm. The work provided a new method for containerless emulsification, thus shedding light on the preparation of contamination-free pharmaceuticals.

Abstract Image

声悬浮复合液滴的无容器乳化
乳剂本质上是热力学不稳定的分散体,广泛应用于食品加工、化妆品制备和药物输送。现有的超声乳化技术主要依靠超声探头与液体的直接接触,导致液体内部局部高温高压,影响所得乳化液的最终性能。本研究采用超声悬浮技术实现了无容器乳化。通过调节发射-反射距离来改变悬浮水滴表面的声辐射压力,可以促进水-油体系的乳化。采用高速摄像机监测了乳化过程的动力学行为,并通过数值模拟对声场进行了分析。实验结果表明,声场驱动下的液滴雾化是乳化的主要驱动力。该方法可制备平均粒径约为2 ~ 3µm的乳液。该研究为无容器乳化提供了一种新的方法,为无公害药品的制备提供了新的思路。
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CiteScore
6.60
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0.00%
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