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通过声气泡实现颗粒捕获和释放的起始。

Onset of particle trapping and release via acoustic bubbles.

机构信息

Department of Mechanical Engineering, Texas A & M University, College Station, TX 77840, USA.

Department of Mechanical Engineering, Washington State University, Vancouver, WA 98686, USA.

出版信息

Lab Chip. 2016 Aug 2;16(16):3024-32. doi: 10.1039/c5lc01420d.

Abstract

Trapping and sorting of micro-sized objects is one important application of lab on a chip devices, with the use of acoustic bubbles emerging as an effective, non-contact method. Acoustically actuated bubbles are known to exert a secondary radiation force (FSR) on micro-particles and stabilize them on the bubble surface, when this radiation force exceeds the external hydrodynamic forces that act to keep the particles in motion. While the theoretical expression of FSR has been derived by Nyborg decades ago, no direct experimental validation of this force has been performed, and the relationship between FSR and the bubble's ability to trap particles in a given lab on a chip device remains largely empirical. In order to quantify the connection between the bubble oscillation and the resultant FSR, we experimentally measure the amplitude of bubble oscillations that give rise to FSR and observe the trapping and release of a single microsphere in the presence of the mean flow at the corresponding acoustic parameters using an acoustofluidic device. By combining well-developed theories that connect bubble oscillations to the acoustic actuation, we derive the expression for the critical input voltage that leads to particle release into the flow, in good agreement with the experiments.

摘要

微尺寸物体的捕获和分选是芯片实验室设备的一个重要应用,而利用声气泡作为一种有效、非接触的方法正逐渐兴起。当声辐射力超过作用于使颗粒运动的外部流体动力时,声驱动气泡会对微颗粒施加二次辐射力(FSR),并将其稳定在气泡表面。尽管 Nyborg 几十年前已经推导出 FSR 的理论表达式,但尚未对此力进行直接的实验验证,FSR 与气泡在给定的芯片实验室设备中捕获颗粒的能力之间的关系在很大程度上仍然是经验性的。为了量化气泡振荡与由此产生的 FSR 之间的关系,我们使用声流控装置实验测量了产生 FSR 的气泡振荡的幅度,并在相应的声学参数下观察到在存在主流的情况下单个微球的捕获和释放。通过结合将气泡振荡与声激励联系起来的成熟理论,我们推导出了导致颗粒释放到流中的临界输入电压的表达式,与实验结果吻合良好。

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