Diversity of 2D Acoustofluidic Fields in an Ultrasonic Cavity Generated by Multiple Vibration Sources

Two-dimensional acoustofluidic fields in an ultrasonic chamber actuated by segmented ring-shaped vibration sources with different excitation phases are simulated by COMSOL Multiphysics. Diverse acoustic streaming patterns, including aggregation and rotational modes, can be feasibly generated by the...

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Main Authors: Qiang Tang, Song Zhou, Liang Huang, Zhong Chen
Format: Article
Language:English
Published: MDPI AG 2019-11-01
Series:Micromachines
Subjects:
Online Access:https://www.mdpi.com/2072-666X/10/12/803
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spelling doaj-f22195c326d249dc943589ff99112b062020-11-25T02:26:18ZengMDPI AGMicromachines2072-666X2019-11-01101280310.3390/mi10120803mi10120803Diversity of 2D Acoustofluidic Fields in an Ultrasonic Cavity Generated by Multiple Vibration SourcesQiang Tang0Song Zhou1Liang Huang2Zhong Chen3Faculty of Mechanical and Material Engineering, Huaiyin Institute of Technology, Huaian 223001, ChinaFaculty of Mechanical and Material Engineering, Huaiyin Institute of Technology, Huaian 223001, ChinaSchool of Instrument Science and Opto-Electronics Engineering, Hefei University of Technology, Hefei 230009, ChinaFaculty of Mechanical and Material Engineering, Huaiyin Institute of Technology, Huaian 223001, ChinaTwo-dimensional acoustofluidic fields in an ultrasonic chamber actuated by segmented ring-shaped vibration sources with different excitation phases are simulated by COMSOL Multiphysics. Diverse acoustic streaming patterns, including aggregation and rotational modes, can be feasibly generated by the excitation of several sessile ultrasonic sources which only vibrate along radial direction. Numerical simulation of particle trajectory driven by acoustic radiation force and streaming-induced drag force also demonstrates that micro-scale particles suspended in the acoustofluidic chamber can be trapped in the velocity potential well of fluid flow or can rotate around the cavity center with the circumferential acoustic streaming field. Preliminary investigation of simple Russian doll- or Matryoshka-type configurations (double-layer vibration sources) provide a novel method of multifarious structure design in future researches on the combination of phononic crystals and acoustic streaming fields. The implementation of multiple segmented ring-shaped vibration sources offers flexibility for the control of acoustic streaming fields in microfluidic devices for various applications. We believe that this kind of acoustofluidic design is expected to be a promising tool for the investigation of rapid microfluidic mixing on a chip and contactless rotational manipulation of biosamples, such as cells or nematodes.https://www.mdpi.com/2072-666X/10/12/803acoustic streamingdiversityacoustofluidic fieldmatryoshka structure
collection DOAJ
language English
format Article
sources DOAJ
author Qiang Tang
Song Zhou
Liang Huang
Zhong Chen
spellingShingle Qiang Tang
Song Zhou
Liang Huang
Zhong Chen
Diversity of 2D Acoustofluidic Fields in an Ultrasonic Cavity Generated by Multiple Vibration Sources
Micromachines
acoustic streaming
diversity
acoustofluidic field
matryoshka structure
author_facet Qiang Tang
Song Zhou
Liang Huang
Zhong Chen
author_sort Qiang Tang
title Diversity of 2D Acoustofluidic Fields in an Ultrasonic Cavity Generated by Multiple Vibration Sources
title_short Diversity of 2D Acoustofluidic Fields in an Ultrasonic Cavity Generated by Multiple Vibration Sources
title_full Diversity of 2D Acoustofluidic Fields in an Ultrasonic Cavity Generated by Multiple Vibration Sources
title_fullStr Diversity of 2D Acoustofluidic Fields in an Ultrasonic Cavity Generated by Multiple Vibration Sources
title_full_unstemmed Diversity of 2D Acoustofluidic Fields in an Ultrasonic Cavity Generated by Multiple Vibration Sources
title_sort diversity of 2d acoustofluidic fields in an ultrasonic cavity generated by multiple vibration sources
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2019-11-01
description Two-dimensional acoustofluidic fields in an ultrasonic chamber actuated by segmented ring-shaped vibration sources with different excitation phases are simulated by COMSOL Multiphysics. Diverse acoustic streaming patterns, including aggregation and rotational modes, can be feasibly generated by the excitation of several sessile ultrasonic sources which only vibrate along radial direction. Numerical simulation of particle trajectory driven by acoustic radiation force and streaming-induced drag force also demonstrates that micro-scale particles suspended in the acoustofluidic chamber can be trapped in the velocity potential well of fluid flow or can rotate around the cavity center with the circumferential acoustic streaming field. Preliminary investigation of simple Russian doll- or Matryoshka-type configurations (double-layer vibration sources) provide a novel method of multifarious structure design in future researches on the combination of phononic crystals and acoustic streaming fields. The implementation of multiple segmented ring-shaped vibration sources offers flexibility for the control of acoustic streaming fields in microfluidic devices for various applications. We believe that this kind of acoustofluidic design is expected to be a promising tool for the investigation of rapid microfluidic mixing on a chip and contactless rotational manipulation of biosamples, such as cells or nematodes.
topic acoustic streaming
diversity
acoustofluidic field
matryoshka structure
url https://www.mdpi.com/2072-666X/10/12/803
work_keys_str_mv AT qiangtang diversityof2dacoustofluidicfieldsinanultrasoniccavitygeneratedbymultiplevibrationsources
AT songzhou diversityof2dacoustofluidicfieldsinanultrasoniccavitygeneratedbymultiplevibrationsources
AT lianghuang diversityof2dacoustofluidicfieldsinanultrasoniccavitygeneratedbymultiplevibrationsources
AT zhongchen diversityof2dacoustofluidicfieldsinanultrasoniccavitygeneratedbymultiplevibrationsources
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