Coalescence Dynamics of Acoustically Levitated Droplets

The<b> </b>contactless coalescence of a droplet is of paramount importance for physical and industrial applications. This paper describes a coalescence method to be used mid-air via acoustic levitation using an ultrasonic phased array system. Acoustic levitation using ultrasonic phased a...

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Main Authors: Koji Hasegawa, Ayumu Watanabe, Akiko Kaneko, Yutaka Abe
Format: Article
Language:English
Published: MDPI AG 2020-03-01
Series:Micromachines
Subjects:
Online Access:https://www.mdpi.com/2072-666X/11/4/343
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spelling doaj-e1e8494accfd4ce0a463b88a9715b8b72020-11-25T02:10:34ZengMDPI AGMicromachines2072-666X2020-03-0111434310.3390/mi11040343mi11040343Coalescence Dynamics of Acoustically Levitated DropletsKoji Hasegawa0Ayumu Watanabe1Akiko Kaneko2Yutaka Abe3Department of Mechanical Engineering, Kogakuin University, Tokyo 163-8677, JapanGraduate School of Systems and Information Engineering, University of Tsukuba, Tsukuba 305-8573, JapanFaculty of Engineering, Information and Systems, University of Tsukuba, Tsukuba 305-8573, JapanFaculty of Engineering, Information and Systems, University of Tsukuba, Tsukuba 305-8573, JapanThe<b> </b>contactless coalescence of a droplet is of paramount importance for physical and industrial applications. This paper describes a coalescence method to be used mid-air via acoustic levitation using an ultrasonic phased array system. Acoustic levitation using ultrasonic phased arrays provides promising lab-on-a-drop applications, such as transportation, coalescence, mixing, separation, evaporation, and extraction in a continuous operation. The mechanism of droplet coalescence in mid-air may be better understood by experimentally and numerically exploring the droplet dynamics immediately before the coalescence. In this study, water droplets were experimentally levitated, transported, and coalesced by controlled acoustic fields. We observed that the edges of droplets deformed and attracted each other immediately before the coalescence. Through image processing, the radii of curvature of the droplets were quantified and the pressure difference between the inside and outside a droplet was simulated to obtain the pressure and velocity information on the droplet&#8217;s surface. The results revealed that the sound pressure acting on the droplet clearly decreased before the impact of the droplets. This pressure on the droplets was quantitatively analyzed from the experimental data. Our experimental and numerical results provide deeper physical insights into contactless droplet manipulation for futuristic lab-on-a-drop applications.https://www.mdpi.com/2072-666X/11/4/343acoustic levitationultrasonic phased arraydropletcoalescencelab-on-a-drop
collection DOAJ
language English
format Article
sources DOAJ
author Koji Hasegawa
Ayumu Watanabe
Akiko Kaneko
Yutaka Abe
spellingShingle Koji Hasegawa
Ayumu Watanabe
Akiko Kaneko
Yutaka Abe
Coalescence Dynamics of Acoustically Levitated Droplets
Micromachines
acoustic levitation
ultrasonic phased array
droplet
coalescence
lab-on-a-drop
author_facet Koji Hasegawa
Ayumu Watanabe
Akiko Kaneko
Yutaka Abe
author_sort Koji Hasegawa
title Coalescence Dynamics of Acoustically Levitated Droplets
title_short Coalescence Dynamics of Acoustically Levitated Droplets
title_full Coalescence Dynamics of Acoustically Levitated Droplets
title_fullStr Coalescence Dynamics of Acoustically Levitated Droplets
title_full_unstemmed Coalescence Dynamics of Acoustically Levitated Droplets
title_sort coalescence dynamics of acoustically levitated droplets
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2020-03-01
description The<b> </b>contactless coalescence of a droplet is of paramount importance for physical and industrial applications. This paper describes a coalescence method to be used mid-air via acoustic levitation using an ultrasonic phased array system. Acoustic levitation using ultrasonic phased arrays provides promising lab-on-a-drop applications, such as transportation, coalescence, mixing, separation, evaporation, and extraction in a continuous operation. The mechanism of droplet coalescence in mid-air may be better understood by experimentally and numerically exploring the droplet dynamics immediately before the coalescence. In this study, water droplets were experimentally levitated, transported, and coalesced by controlled acoustic fields. We observed that the edges of droplets deformed and attracted each other immediately before the coalescence. Through image processing, the radii of curvature of the droplets were quantified and the pressure difference between the inside and outside a droplet was simulated to obtain the pressure and velocity information on the droplet&#8217;s surface. The results revealed that the sound pressure acting on the droplet clearly decreased before the impact of the droplets. This pressure on the droplets was quantitatively analyzed from the experimental data. Our experimental and numerical results provide deeper physical insights into contactless droplet manipulation for futuristic lab-on-a-drop applications.
topic acoustic levitation
ultrasonic phased array
droplet
coalescence
lab-on-a-drop
url https://www.mdpi.com/2072-666X/11/4/343
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AT akikokaneko coalescencedynamicsofacousticallylevitateddroplets
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