English

Acoustophoresis in polymer-based microfluidic devices: modeling and experimental validation

Fluid Dynamics 2021-07-30 v1

Abstract

A finite-element model is presented for numerical simulation in three dimensions of acoustophoresis of suspended microparticles in a microchannel embedded in a polymer chip and driven by an attached piezoelectric transducer at MHz frequencies. In accordance with the recently introduced principle of whole-system ultrasound resonances, an optimal resonance mode is identified that is related to an acoustic resonance of the combined transducer-chip-channel system and not to the conventional pressure half-wave resonance of the microchannel. The acoustophoretic action in the microchannel is of comparable quality and strength to conventional silicon-glass or pure glass devices. The numerical predictions are validated by acoustic focusing experiments on 5-um-diameter polystyrene particles suspended inside a microchannel, which was milled into a PMMA-chip. The system was driven anti-symmetrically by a piezoelectric transducer, driven by a 30-V peak-to-peak AC-voltage in the range from 0.5 to 2.5 MHz, leading to acoustic energy densities of 13 J/m^3 and particle focusing times of 6.6 s.

Keywords

Cite

@article{arxiv.2107.13963,
  title  = {Acoustophoresis in polymer-based microfluidic devices: modeling and experimental validation},
  author = {Fabian Lickert and Mathias Ohlin and Henrik Bruus and Pelle Ohlsson},
  journal= {arXiv preprint arXiv:2107.13963},
  year   = {2021}
}

Comments

12 pages, 7 pdf figures, pdf-latex

R2 v1 2026-06-24T04:38:48.903Z