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Ultrasound-induced acoustophoretic motion of microparticles in three dimensions

Authors :
Henrik Bruus
Peter Barkholt Muller
Massimiliano Rossi
Alvaro Marin
Christian J. Kähler
Per Augustsson
Rune Barnkob
Thomas Laurell
Source :
Muller, P B, Rossi, M, Marín, Á G, Barnkob, R, Augustsson, P, Laurell, T, Kähler, C J & Bruus, H 2013, ' Ultrasound-induced acoustophoretic motion of microparticles in three dimensions ', Physical Review E, vol. 88, no. 2, pp. 023006 . https://doi.org/10.1103/PhysRevE.88.023006
Publication Year :
2013
Publisher :
American Physical Society (APS), 2013.

Abstract

We derive analytical expressions for the three-dimensional (3D) acoustophoretic motion of spherical microparticles in rectangular microchannels. The motion is generated by the acoustic radiation force and the acoustic streaming-induced drag force. In contrast to the classical theory of Rayleigh streaming in shallow, infinite, parallel-plate channels, our theory does include the effect of the microchannel side walls. The resulting predictions agree well with numerics and experimental measurements of the acoustophoretic motion of polystyrene spheres with nominal diameters of 0.537 um and 5.33 um. The 3D particle motion was recorded using astigmatism particle tracking velocimetry under controlled thermal and acoustic conditions in a long, straight, rectangular microchannel actuated in one of its transverse standing ultrasound-wave resonance modes with one or two half-wavelengths. The acoustic energy density is calibrated in situ based on measurements of the radiation dominated motion of large 5-um-diam particles, allowing for quantitative comparison between theoretical predictions and measurements of the streaming induced motion of small 0.5-um-diam particles.<br />13 pages, 8 figures, Revtex 4.1

Details

ISSN :
15502376 and 15393755
Volume :
88
Database :
OpenAIRE
Journal :
Physical Review E
Accession number :
edsair.doi.dedup.....a4dc758d73dc14c9ec940ab27ec229bd