Theoretical and experimental characterizations of gigahertz acoustic streaming in microscale fluids

Even as gigahertz (GHz) acoustic streaming has developed into a multi-functional platform technology for biochemical applications, including ultrafast microfluidic mixing, microparticle operations, and cellar or vesicle surgery, its theoretical principles have yet to be established. This is because...

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Main Authors: Weiwei Cui, Wei Pang, Yang Yang, Tiechuan Li, Xuexin Duan
Format: Article
Language:English
Published: AIP Publishing LLC 2019-03-01
Series:Nanotechnology and Precision Engineering
Online Access:http://www.sciencedirect.com/science/article/pii/S2589554019300042
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spelling doaj-1f55c2d198674b25a91fa8889de3244d2021-05-03T04:39:21ZengAIP Publishing LLCNanotechnology and Precision Engineering2589-55402019-03-01211522Theoretical and experimental characterizations of gigahertz acoustic streaming in microscale fluidsWeiwei Cui0Wei Pang1Yang Yang2Tiechuan Li3Xuexin Duan4State Key Laboratory of Precision Measuring Technology & Instruments, College of Precision; Precision Instrument and Optoelectronics Engineering, Tianjin University, Tianjin 300072, ChinaState Key Laboratory of Precision Measuring Technology & Instruments, College of Precision; Precision Instrument and Optoelectronics Engineering, Tianjin University, Tianjin 300072, ChinaState Key Laboratory of Precision Measuring Technology & Instruments, College of Precision; Precision Instrument and Optoelectronics Engineering, Tianjin University, Tianjin 300072, ChinaState Key Laboratory of Precision Measuring Technology & Instruments, College of Precision; Precision Instrument and Optoelectronics Engineering, Tianjin University, Tianjin 300072, ChinaCorresponding author.; State Key Laboratory of Precision Measuring Technology & Instruments, College of Precision; Precision Instrument and Optoelectronics Engineering, Tianjin University, Tianjin 300072, ChinaEven as gigahertz (GHz) acoustic streaming has developed into a multi-functional platform technology for biochemical applications, including ultrafast microfluidic mixing, microparticle operations, and cellar or vesicle surgery, its theoretical principles have yet to be established. This is because few studies have been conducted on the use of such high frequency acoustics in microscale fluids. Another difficulty is the lack of velocimetry methods for microscale and nanoscale fluidic streaming. In this work, we focus on the basic aspects of GHz acoustic streaming, including its micro-vortex generation principles, theoretical model, and experimental characterization technologies. We present details of a weak-coupled finite simulation that represents our current understanding of the GHz-acoustic-streaming phenomenon. Both our simulation and experimental results show that the GHz-acoustic-induced interfacial body force plays a determinative role in vortex generation. We carefully studied changes in the formation of GHz acoustic streaming at different acoustic powers and flow rates. In particular, we developed a microfluidic-particle-image velocimetry method that enables the quantification of streaming at the microscale and even nanoscale. This work provides a full map of GHz acoustofluidics and highlights the way to further theoretical study of this topic. Keywords: Acoustic streaming, Gigahertz, Body force, Microfluidic PIVhttp://www.sciencedirect.com/science/article/pii/S2589554019300042
collection DOAJ
language English
format Article
sources DOAJ
author Weiwei Cui
Wei Pang
Yang Yang
Tiechuan Li
Xuexin Duan
spellingShingle Weiwei Cui
Wei Pang
Yang Yang
Tiechuan Li
Xuexin Duan
Theoretical and experimental characterizations of gigahertz acoustic streaming in microscale fluids
Nanotechnology and Precision Engineering
author_facet Weiwei Cui
Wei Pang
Yang Yang
Tiechuan Li
Xuexin Duan
author_sort Weiwei Cui
title Theoretical and experimental characterizations of gigahertz acoustic streaming in microscale fluids
title_short Theoretical and experimental characterizations of gigahertz acoustic streaming in microscale fluids
title_full Theoretical and experimental characterizations of gigahertz acoustic streaming in microscale fluids
title_fullStr Theoretical and experimental characterizations of gigahertz acoustic streaming in microscale fluids
title_full_unstemmed Theoretical and experimental characterizations of gigahertz acoustic streaming in microscale fluids
title_sort theoretical and experimental characterizations of gigahertz acoustic streaming in microscale fluids
publisher AIP Publishing LLC
series Nanotechnology and Precision Engineering
issn 2589-5540
publishDate 2019-03-01
description Even as gigahertz (GHz) acoustic streaming has developed into a multi-functional platform technology for biochemical applications, including ultrafast microfluidic mixing, microparticle operations, and cellar or vesicle surgery, its theoretical principles have yet to be established. This is because few studies have been conducted on the use of such high frequency acoustics in microscale fluids. Another difficulty is the lack of velocimetry methods for microscale and nanoscale fluidic streaming. In this work, we focus on the basic aspects of GHz acoustic streaming, including its micro-vortex generation principles, theoretical model, and experimental characterization technologies. We present details of a weak-coupled finite simulation that represents our current understanding of the GHz-acoustic-streaming phenomenon. Both our simulation and experimental results show that the GHz-acoustic-induced interfacial body force plays a determinative role in vortex generation. We carefully studied changes in the formation of GHz acoustic streaming at different acoustic powers and flow rates. In particular, we developed a microfluidic-particle-image velocimetry method that enables the quantification of streaming at the microscale and even nanoscale. This work provides a full map of GHz acoustofluidics and highlights the way to further theoretical study of this topic. Keywords: Acoustic streaming, Gigahertz, Body force, Microfluidic PIV
url http://www.sciencedirect.com/science/article/pii/S2589554019300042
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