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Forces acting on a small particle in an acoustical field in a viscous fluid

Physical Review E · 2012 · Vol. 85(1) · pp. 016327–016327
Mikkel SettnesHenrik Bruus

Abstract

We calculate the acoustic radiation force from an ultrasound wave on a compressible, spherical particle suspended in a viscous fluid. Using Prandtl-Schlichting boundary-layer theory, we include the kinematic viscosity of the solvent and derive an analytical expression for the resulting radiation force, which is valid for any particle radius and boundary-layer thickness provided that both of these length scales are much smaller than the wavelength of the ultrasound wave (millimeters in water at megahertz frequencies). The acoustophoretic response of suspended microparticles is predicted and analyzed using parameter values typically employed in microchannel acoustophoresis.

Microfluidic and Bio-sensing TechnologiesMagnetic and Electromagnetic EffectsGranular flow and fluidized bedsMechanicsParticle (ecology)PhysicsClassical mechanicsViscous liquidField (mathematics)AcousticsStatistical physicsMathematicsGeology

MeSH terms

AcousticsParticle SizeViscosity

Funding

  • Lunds Universitet
  • Danmarks Frie Forskningsfond
  • Danmarks Tekniske Universitet
Citations
546
FWCI
15.92
field-weighted impact
References
54
Percentile
100%
vs. same field & year
Citations per year
References
On the acoustic radiation pressure on spheres
Proceedings of the Royal Society of London A Mathematical and Physical Sciences · 1934 · 1,029 citations
Theoretical Acoustics
Journal of Applied Mechanics · 1969 · 3,203 citations
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