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水-镓系统下的超声乳化高速成像。

High-speed imaging of ultrasonic emulsification using a water-gallium system.

机构信息

Graduate School of Environmental Studies, Tohoku University, Miyagi 980-8579, Japan; Department of Metallurgy, Tohoku University, Miyagi 980-8579, Japan.

Graduate School of Environmental Studies, Tohoku University, Miyagi 980-8579, Japan.

出版信息

Ultrason Sonochem. 2021 Mar;71:105387. doi: 10.1016/j.ultsonch.2020.105387. Epub 2020 Nov 13.

Abstract

Aiming at elucidating ultrasonic emulsification mechanisms, the interaction between a single or multiple acoustic cavitation bubbles and gallium droplet interface was investigated using an high-speed imaging technique. To our best knowledge, the moment of emulsification and formation of fine droplets during ultrasound irradiation were observed for the first time. It was found that the detachment of fine gallium droplets occurs from the water-gallium interface during collapse of big cavitation bubbles. The results suggest that the maximum size of cavitation bubble before collapsing is of prime importance for emulsification phenomena. Previous numerical simulation revealed that the collapse of big cavitation bubble is followed by generation of high-velocity liquid jet directed toward the water-gallium interface. Such a jet is assumed to be the prime cause of liquid emulsification. The distance between cavitation bubbles and water-gallium interface was found to slightly affect the emulsification onset. The droplet fragmentation conditions are also discussed in terms of the balance between (1) interfacial and kinetic energies and (2) dynamic and Laplace pressure during droplet formation.

摘要

针对阐明超声乳化机制,使用高速成像技术研究了单个或多个声空化泡与镓液滴界面之间的相互作用。据我们所知,首次观察到了超声辐照期间乳化和形成细小液滴的瞬间。结果表明,在大空化泡崩溃时,细小镓液滴从水-镓界面上脱落。结果表明,在崩溃之前空化泡的最大尺寸对于乳化现象至关重要。先前的数值模拟表明,大空化泡的崩溃会产生高速射流向水-镓界面。这种射流被认为是液体乳化的主要原因。空化泡与水-镓界面之间的距离被发现略微影响乳化的开始。还根据(1)界面能和动能以及(2)液滴形成过程中的动态和拉普拉斯压力之间的平衡来讨论液滴的碎裂条件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6764/7786586/a4e2597f70dd/gr1.jpg

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