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An experimental acoustofluidic system for analyzing boundary-driven acoustic streaming generated by flat and curved walls.

Authors :
Yang, Zhihao
Cheng, Feng
Lin, Li
Chen, Weilong
Zheng, Gaokun
Huang, Zhigang
Yao, Zhen
Yuan, Maodan
Lei, Junjun
Source :
Experimental Thermal & Fluid Science. Jan2025, Vol. 160, pN.PAG-N.PAG. 1p.
Publication Year :
2025

Abstract

• Boundary-driven acoustic streaming (AS) induced by both flat and curved walls is studied experimentally and numerically. • The Chladni figures formed in a semi-circular channel are similar to those observed in a circular channel. • PIV accurately measures the AS fields generated by the motion of 1 µm particles, which aligns with simulations. • The ratio of AS velocity generated by the curved wall and that by the flat wall depends on the acoustic modes. While boundary-driven acoustic streaming in fluids surrounded by flat walls has been extensively studied in the literature, theoretical studies on boundary-driven acoustic streaming generated by curved walls have recently emerged. This paper aims to present a quantitative analysis of acoustic streaming fields driven by forces induced by both flat and curved walls. A semi-circular channel made of stainless steel was designed to serve as a model channel with both flat and curved boundaries. A multi-layered glass-steel-glass device, actuated by a piezoelectric transducer, was assembled for experimental characterization of boundary-driven acoustic streaming in such scenarios. First, the various standing acoustic modes in the semi-circular channel were measured through the acoustophoretic patterning of 20 µm polystyrene particles. Next, the acoustic radiation force fields and boundary-driven acoustic streaming patterns under various resonant acoustic modes were characterized through micro-particle-image-velocimetry measurements of the motion of 20 µm and 1 µm polystyrene particles, respectively. Finally, the experimental results were explained using efficient finite element simulations of acoustofluidics and acoustophoresis in a semi-circular reduced-fluid model, with a focus on analyzing the streaming velocities driven by the flat and curved walls. Both experimental and numerical results demonstrated that the ratio of streaming velocities induced by the flat wall and the curved wall in this semi-circular channel depends on the resonant acoustic modes. This research highlights the diverse boundary-driven acoustic streaming patterns that arise in irregular channels and provides a theoretical foundation for choosing strategies for shape optimization to suppress acoustic streaming in acoustofluidic devices. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
08941777
Volume :
160
Database :
Academic Search Index
Journal :
Experimental Thermal & Fluid Science
Publication Type :
Academic Journal
Accession number :
180630311
Full Text :
https://doi.org/10.1016/j.expthermflusci.2024.111319