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Related Experiment Video

Updated: Jun 12, 2025

Microparticle Manipulation by Standing Surface Acoustic Waves with Dual-frequency Excitations
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Microparticle Manipulation by Standing Surface Acoustic Waves with Dual-frequency Excitations

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Lattice Boltzmann approach for acoustic manipulation.

E Castro-Ávila1, Paolo Malgaretti2, Jens Harting3

  • 1Simulation of Physical Systems Group, Department of Physics, <a href="https://ror.org/059yx9a68">Universidad Nacional de Colombia</a>, Crr 30 No. 45-03, Bogotá D.C., Colombia.

Physical Review. E
|September 19, 2024
PubMed
Summary

This study introduces a novel lattice Boltzmann method to calculate acoustic radiation force on objects in standing waves. The method accurately predicts forces for spheres and cylinders, showing promise for applications like acoustic tweezers.

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Area of Science:

  • Acoustics
  • Computational Fluid Dynamics
  • Physics

Background:

  • Acoustic radiation force is crucial for manipulating micro-objects.
  • Existing methods for calculating acoustic forces can be computationally intensive.
  • Accurate simulation of acoustic radiation force is needed for applications in medicine and engineering.

Purpose of the Study:

  • To develop a novel lattice Boltzmann method for computing acoustic radiation force.
  • To validate the method against theoretical predictions for simple geometries.
  • To demonstrate the method's potential for simulating complex acoustic manipulation phenomena.

Main Methods:

  • Employed a lattice Boltzmann method (LBM) to model acoustic wave propagation.
  • Used a kernel interpolation scheme to compute pressure and velocity perturbations on object surfaces.
  • Calculated acoustic radiation force from these perturbations.

Main Results:

  • The LBM accurately reproduced theoretical acoustic radiation forces for spheres (3D) and cylinders (2D).
  • The method achieved high accuracy even with a limited number of lattice Boltzmann cells.
  • The simulation successfully computed the acoustic radiation force for density-matched compressible objects.

Conclusions:

  • The proposed lattice Boltzmann method is an effective tool for simulating acoustic radiation force.
  • This method shows significant promise for applications such as acoustic tweezers and microswimmer manipulation.
  • The approach offers a computationally efficient alternative for studying acoustic radiation force phenomena.