4.7 Article

A simplified three-dimensional numerical simulation approach for surface acoustic wave tweezers

Journal

ULTRASONICS
Volume 125, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.ultras.2022.106797

Keywords

Acoustic tweezers; Microfluidics; Particle separation; Numerical simulation

Funding

  1. General Program of National Natural Science Foundation of China (NSFC) [52075162]
  2. Innovation Leading Program of New and High-tech Industry of Hunan Province [2020GK2015, 2021GK4014]
  3. Natural Science Foundation of Hunan Province [2021JJ20018]
  4. Ministry of Education
  5. Key Research Project of Guangdong Province [2020B0101040002]
  6. Natural Science Foundation of Changsha [kq2007026]
  7. Engineering Physics and Science Research Council of UK [EPSRC EP/P018998/1]
  8. Royal Society [IEC/NSFC/201078]
  9. NSFC

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This study develops a simplified but effective 3D SSAW microfluidic model to investigate the separation and manipulation of particles. The model considers propagation attenuation of surface waves to increase modeling accuracy and simplifies the modeling of piezoelectric substrates and microchannel walls to reduce computational complexity. Simulation results are compared with experimental data, demonstrating the reliability of the model.
Standing surface acoustic waves (SSAWs) have been extensively used as acoustic tweezers to manipulate, transport, and separate microparticles and biological cells in a microscale fluidic environment, with great potentials for biomedical sensing, genetic analysis, and therapeutics applications. Currently, there lacks an accurate, reliable, and efficient three-dimensional (3D) modeling platform to simulate behaviors of micron-size particles/cells in acoustofluidics, which is crucial to provide the guidance for the experimental studies. The major challenge for achieving this is the computational complexity of 3D modeling. Herein, a simplified but effective 3D SSAW microfluidic model was developed to investigate the separation and manipulation of particles. This model incorporates propagation attenuation of the surface waves to increase the modeling accuracy, while simplifies the modeling of piezoelectric substrates and the wall of microchannel by determining the effective propagation region of the substrate. We have simulated the SSAWs microfluidics device, and systematically analyzed effects of voltage, tilt angle, and flow rate on the separation of the particles under the SSAWs. The obtained simulation results are compared with those obtained from the experimental studies, showing good agreements. This simplified modeling platform could become a convenient tool for acoustofluidic research.

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