Microparticle concentration in short path length uftrasonic resonators: Roles of radiation pressure and acoustic streaming

被引:34
作者
Kuznetsova, LA [1 ]
Coakley, WT [1 ]
机构
[1] Cardiff Univ, Sch Biosci, Cardiff CF10 3TL, S Glam, Wales
关键词
D O I
10.1121/1.1785831
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Acoustic streaming in ultrasonic (1.4-3.0 MHz) circular and rectangular resonators of path length approximately one-half or one quarter wavelength (lambda) has been characterized by particle image velocimetry (PIV) using fluorescent 1 mum diam latex markers. Particles of all diameters examined (1, 24, 80 mum) moved into pressure node planes within 4 s of initiation of sonication. The larger particles then moved within that plane to one or more preferred positions. 1 mum particles in a lambda/2 cylindrical resonator with a single nodal concentration region for larger particles were convected by Rayleigh-type streaming from the center of the node plane to its edge. In contrast, particles concentrated at many loci in two planes of a second cylindrical and a rectangular chamber. Small scale wall-associated Rayleigh-type vortices occurred in a lambda/4 chamber. More unexpectedly, wall-independent bulk suspension vortices, with circulation planes parallel to the transducer radiating surface, were recorded in both resonators. Tracer particles experienced radial forces that drove them towards or away from the center of the vortices to be concentrated at its center or entrained in a vortex perimeter ring. These different outcomes are discussed in terms of lateral radiation force distribution in the node planes. (C) 2004 Acoustical Society of America.
引用
收藏
页码:1956 / 1966
页数:11
相关论文
共 50 条
[1]  
Benes E, 2001, ULTRASON, P649, DOI 10.1109/ULTSYM.2001.991812
[2]   Review of LDA and PIV applied to the measurement of sound and acoustic streaming [J].
Campbell, M ;
Cosgrove, JA ;
Greated, CA ;
Jack, S ;
Rockliff, D .
OPTICS AND LASER TECHNOLOGY, 2000, 32 (7-8) :629-639
[3]  
CHRISTENSEN KT, 2000, 943 U ILL THEOR APPL
[4]  
Coakley WT, 2004, COLLOID SURFACE B, V34, P221, DOI 10.1016/j.colfsurb.2004.01.002
[5]   PIV applied to Eckart streaming produced by a medical ultrasound transducer [J].
Cosgrove, JA ;
Buick, JM ;
Pye, SD ;
Greated, CA .
ULTRASONICS, 2001, 39 (06) :461-464
[6]  
Gor'kov L. P., 1962, SOV PHYS DOKL, V6, P773, DOI DOI 10.1039/C004504G
[7]  
Gould R. K., 1974, Proceedings of the 1973 Symposium on Finite-Amplitude Wave Effects in Fluids, P252
[8]   A continuous flow ultrasonic cell-filtering method [J].
Hawkes, JJ ;
Coakley, WT .
ENZYME AND MICROBIAL TECHNOLOGY, 1996, 19 (01) :57-62
[9]   Ultrasonic deposition of cells on a surface [J].
Hawkes, JJ ;
Long, MJ ;
Coakley, WT ;
McDonnell, MB .
BIOSENSORS & BIOELECTRONICS, 2004, 19 (09) :1021-1028
[10]   Single half-wavelength ultrasonic particle filter:: Predictions of the transfer matrix multilayer resonator model and experimental filtration results [J].
Hawkes, JJ ;
Coakley, WT ;
Gröschl, M ;
Benes, E ;
Armstrong, S ;
Tasker, PJ ;
Nowotny, H .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2002, 111 (03) :1259-1266