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基于行波的衍射声场产生的周期性瑞利流涡和埃卡特流。

Periodic Rayleigh streaming vortices and Eckart flow arising from traveling-wave-based diffractive acoustic fields.

作者信息

Kolesnik Kirill, Hashemzadeh Pouya, Peng Danli, Stamp Melanie E M, Tong Wei, Rajagopal Vijay, Miansari Morteza, Collins David J

机构信息

Department of Biomedical Engineering, The University of Melbourne, Melbourne, VIC 3010, Australia.

Department of Cancer Medicine, Cell Science Research Center, Royan Institute for Stem Cell Biology and Technology, ACECR, Isar 11, 47138-18983 Babol, Iran.

出版信息

Phys Rev E. 2021 Oct;104(4-2):045104. doi: 10.1103/PhysRevE.104.045104.

Abstract

Recent studies have demonstrated that periodic time-averaged acoustic fields can be produced from traveling surface acoustic waves (SAWs) in microfluidic devices. This is caused by diffractive effects arising from a spatially limited transducer. This permits the generation of acoustic patterns evocative of those produced from standing waves, but instead with the application of a traveling wave. While acoustic pressure fields in such systems have been investigated, acoustic streaming from diffractive fields has not. In this work we examine this phenomenon and demonstrate the appearance of geometry-dependent acoustic vortices, and demonstrate that periodic, identically rotating Rayleigh streaming vortices result from the imposition of a traveling SAW. This is also characterized by a channel-spanning flow that bridges between adjacent vortices along the channel top and bottom. We find that the channel dimensions determine the types of streaming that develops; while Eckart streaming has been previously presumed to be a distinguishing feature of traveling-wave actuation, we show that Rayleigh streaming vortices also results. This has implications for microfluidic actuation, where traveling acoustic waves have applications in microscale mixing, separation, and patterning.

摘要

最近的研究表明,在微流体装置中,行进的表面声波(SAW)可以产生周期性的时间平均声场。这是由空间有限的换能器产生的衍射效应引起的。这使得能够产生类似于驻波产生的声学图案,但却是通过施加行波来实现的。虽然已经对这种系统中的声压场进行了研究,但尚未研究衍射场产生的声流。在这项工作中,我们研究了这种现象,并展示了与几何形状相关的声学涡旋的出现,还证明了周期性、同向旋转的瑞利流涡旋是由施加行进的SAW产生的。这还具有跨越通道的流动特征,该流动在通道顶部和底部的相邻涡旋之间架起桥梁。我们发现通道尺寸决定了所形成的流的类型;虽然埃卡特流以前被认为是行波驱动的一个显著特征,但我们表明瑞利流涡旋也会产生。这对微流体驱动有影响,其中行进的声波在微尺度混合、分离和图案化方面有应用。

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