利用声学超表面偏转器和反向反射器在任意定向表面之间产生多功能驻波

IF 6.8 Q1 AUTOMATION & CONTROL SYSTEMS
Chadi Ellouzi, Farhood Aghdasi, Ali Zabihi, Amir K. Miri, Chen Shen
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引用次数: 0

摘要

使用驻波结构的声波设备已经在医疗诊断和制造等各个领域引起了人们的兴趣。它们的功能范围从细胞分选到通过周期性声压场组装微尺度纤维。传统的方法通常需要平行的声发射面和反射面,产生受限的驻波模式。本文介绍了一种利用声学超表面偏转器和后向反射器制造多功能声波驻波场的有效方法。偏转器操纵入射声波的方向,与反向反射器相结合,将这些声波反射回声源。拟议的设计允许产生不受两个表面的相对角度限制的驻波,并且允许超越标准限制的可定制的波形,具有增强的适应性。该系统的有效性通过有限元计算模拟和基于3d打印原型的实验验证进行了评估。结果表明,通过精心设计超表面偏转器和后向反射器,可以在任意取向表面之间产生多用途驻波。这种方法可以提高驻波在粒子操纵中的应用性能,从而拓宽了超声和声流技术的实际应用范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Versatile Standing Wave Generation Between Arbitrarily Oriented Surfaces Using Acoustic Metasurface Deflectors and Retroreflectors

Versatile Standing Wave Generation Between Arbitrarily Oriented Surfaces Using Acoustic Metasurface Deflectors and Retroreflectors

Acoustic wave devices using standing wave configurations have gained interest in various fields like healthcare diagnostics and manufacturing. Their functionalities span from cell sorting to microscale fiber assembly through periodic acoustic pressure fields. Conventional methods usually require parallel acoustic emitters and reflective surfaces, producing constrained standing wave patterns. In this paper, an effective approach for creating versatile acoustic standing wave fields using an acoustic metasurface deflector and retroreflector is introduced. The deflector manipulates the direction of incoming acoustic waves coupled with the retroreflector to reflect these waves back to the source. The proposed design allows the creation of standing waves that are not constrained by the relative angles of the two surfaces involved and allows for customizable wave patterns beyond the standard limits with enhanced adaptability. The system's effectiveness is evaluated through computational simulations using finite element analysis and experimental validation based on a 3D-printed prototype. Results suggest that versatile standing waves between arbitrarily oriented surfaces can be produced through the careful design of the metasurface deflector and retroreflector. This approach can improve the performance of standing wave applications in particle manipulation, thus broadening the range of practical implementations for ultrasound and acoustofluidic technologies.

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CiteScore
1.30
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