P Weekers Bart, Rottenberg Xavier, Lagae Liesbet, Rochus Veronique
KU Leuven, Department of Physics and Astronomy, B-3001 Leuven, Belgium.
imec, Kapeldreef 75, B-3001 Leuven, Belgium.
J Acoust Soc Am. 2022 Jun;151(6):3615. doi: 10.1121/10.0011544.
Acoustic tweezers are increasingly utilized for the contactless manipulation of small particles. This paper provides a theoretical model demonstrating the acoustic manipulation capabilities of single-beam acoustic transducers. Analytical formulas are derived for the acoustic radiation force on an isotropic spherical object of arbitrary size, centered on a circular piston, simply supported and clamped radiator in an inviscid fluid. Using these results, the existence of a negative axial force pulling the object closer to the radiator is revealed and explored. These findings offer further insight into the feasibility of trapping objects in the near-field of a single-beam acoustic transducer. The calculations illustrate the trapping capabilities of the different emitters as a function of radiator size, particle size, and distance from the source and highlight the impact of radiator boundary conditions. Manipulation of a cell-like fluid sphere in water and an expanded polystyrene sphere in air are studied in more detail with results that are validated through finite element analysis. The developed theoretical model allows fast evaluation of acoustic radiation forces which could aid in the development of relatively simple and inexpensive contactless manipulation solutions.
声镊越来越多地用于对小颗粒进行非接触式操纵。本文提供了一个理论模型,展示了单束声换能器的声学操纵能力。推导了在无粘流体中,以圆形活塞为中心、简支和夹紧辐射器上任意大小的各向同性球形物体所受声辐射力的解析公式。利用这些结果,揭示并探讨了存在将物体拉向辐射器的负轴向力。这些发现为在单束声换能器近场捕获物体的可行性提供了进一步的见解。计算结果说明了不同发射器的捕获能力与辐射器尺寸、颗粒尺寸以及与源的距离之间的函数关系,并突出了辐射器边界条件的影响。对水中类似细胞的流体球体和空气中的膨胀聚苯乙烯球体的操纵进行了更详细的研究,结果通过有限元分析得到了验证。所建立的理论模型能够快速评估声辐射力,这有助于开发相对简单且廉价的非接触式操纵解决方案。