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Ultrasound focuser: A multi-cylindrical source configuration and entrapped particles dynamics

机译:超声波聚焦器:多圆柱源配置和夹带粒子动力学

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We aim to introduce the proof of concept of a 3D ultrasound Focuser with possible advanced applications in living-matter/cell entrapment, particle focusing, transportation through virtual channel and drug, agent or material delivery systems. The proposed mechanism is assumed to be fully submerged in a fluidic environment and composed of three parallel acoustic line sources which are located in such a way that form a triangular right prism. By approximating the wave field of each cylindrical source as a progressive plane wave field whose amplitude decreases with respect to the travelling distance from the source, the acoustic radiation force exerted on a single particle is analytically derived. It is shown that when each source has a pi/3 phase different from other sources, an attracting zone around the axis of the triangular prism is formed for wavelengths in the order of the size scale, lambda/l similar to O(1), where l denotes the distance between each two sources. The optimal operating situation (the largest attracting zone) is found for the case where lambda approximate to l. The theoretical study is supported by stability analysis of dynamics of the entrapped particle which located on the axis of the prism; and validated by computing the trajectories of migration of the test particle. The stability analysis is performed by considering the unsteady solution of Stokes equations and the possible flow of environmental fluid medium. In addition, the required settling time and required length scales to focus the particle to the center line of the prism for different size scale ratios are estimated and discussed. Compared to other 3D focusing techniques, this method is non-invasive, robust, easy to implement, applicable to nearly all types of micro-particles and does not need any specific pre-designed channel for focusing process.
机译:我们的目标是介绍3D超声波聚焦器的概念证明,具有可能的生物/细胞夹带,粒子聚焦,通过虚拟通道和药物,代理或材料输送系统中的粒子聚焦。假设所提出的机制完全浸没在流体环境中,并由三个并联声线来源组成,该源以形成三角形右棱镜的方式。通过近似每个圆柱源的波场作为渐进平面波场,其幅度相对于距源的行进距离减小,分析在单个粒子上施加的声学辐射力。结果表明,当每个源具有与其他源不同的PI / 3相时,在三角形棱镜的轴线周围的吸引区以尺寸标度的顺序形成波长,Lambda / L类似于O(1),其中l表示每个两个源之间的距离。找到最佳操作情况(最大吸引区)对于Lambda近似为L.通过位于棱镜轴线的捕获粒子的动态的稳定性分析支持理论研究;并通过计算测试粒子的迁移轨迹来验证。通过考虑Stokes方程的不稳定解和环境流体介质的可能流动来进行稳定性分析。另外,估计并讨论了将粒子聚焦到棱镜中心线的所需的沉降时间和所需的长度尺度。与其他3D聚焦技术相比,该方法是无侵入性的,坚固的,易于实现,适用于几乎所有类型的微粒,不需要任何特定的预先设计的通道用于聚焦过程。

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