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Acoustic Manipulation of Bio-Particles at High Frequencies: An Analytical and Simulation Approach

机译:高频生物粒子的声处理:一种分析和模拟方法

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摘要

Manipulation of micro and nano particles in microfluidic devices with high resolution is a challenge especially in bioengineering applications where bio-particles (BPs) are separated or patterned. While acoustic forces have been used to control the position of BPs, its theoretical aspects need further investigation particularly for high-resolution manipulation where the wavelength and particle size are comparable. In this study, we used a finite element method (FEM) to amend analytical calculations of acoustic radiation force (ARF) arising from an imposed standing ultrasound field. First, an acoustic solid interaction (ASI) approach was implemented to calculate the ARF exerted on BPs and resultant deformation induced to them. The results were then used to derive a revised expression for the ARF beyond the small particle assumption. The expression was further assessed in numerical simulations of one- and multi-directional standing acoustic waves (SAWs). Furthermore, a particle tracing scheme was used to investigate the effect of actual ARF on separation and patterning applications under experimentally-relevant conditions. The results demonstrated a significant mismatch between the actual force and previous analytical predictions especially for high frequencies of manipulation. This deviation found to be not only because of the shifted ARF values but also due to the variation in force maps in multidirectional wave propagation. Findings of this work can tackle the simulation limitations for spatiotemporal control of BPs using a high resolution acoustic actuation.
机译:在高分辨率的微流控设备中操纵微米和纳米颗粒是一个挑战,尤其是在生物工程应用中,其中生物颗粒(BPs)被分离或图案化。虽然声力已用于控制BP的位置,但其理论方面需要进一步研究,尤其是对于波长和粒径可比的高分辨率操纵。在这项研究中,我们使用了有限元方法(FEM)来修正由于施加的站立超声场而产生的声辐射力(ARF)的分析计算。首先,实施了声固相互作用(ASI)方法来计算作用在BP上的ARF以及由此引起的变形。然后将结果用于得出超出小颗粒假设的ARF修正表达式。在单向和多向声波驻波(SAW)的数值模拟中进一步评估了该表达式。此外,使用了一种粒子追踪方案来研究实际ARF在与实验相关的条件下对分离和构图应用的影响。结果表明,实际力与先前的分析预测之间存在明显的不匹配,尤其是对于高频操纵。发现该偏差不仅是由于偏移的ARF值,而且还归因于多方向波传播中力图的变化。这项工作的发现可以解决使用高分辨率声激励进行BP时空控制的模拟限制。

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