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重力场流分级法:利用声场增强分辨率。

Gravitational field flow fractionation: Enhancing the resolution power by using an acoustic force field.

机构信息

Department of Information and Communication Engineering, Daegu Gyeongbuk Institute of Science &Technology, Daegu, Republic of Korea.

Department of Chemical Engineering, Kyonggi University, Gyeonggi-do, 16227, Republic of Korea.

出版信息

Anal Chim Acta. 2019 Jan 24;1047:238-247. doi: 10.1016/j.aca.2018.09.056. Epub 2018 Sep 25.

Abstract

An acoustic field flow fractionation (FFF) device was developed to fractionate a micro-particle mixture on the basis of the particle diameter using an acoustic force field in a carrier liquid flow. In the acoustic FFF channel used in the device, ultrasound waves generated from piezoelectric transducers driven by a sinusoidal signal of 2.02 Mhz propagated into the carrier liquid flow and built up a quarter-wavelength ultrasound standing wave field across the channel height. It was experimentally demonstrated that the acoustic field with a pressure node plane at the bottom surface of the channel reduced the thickness of the particle diffusion layer in a stagnant liquid proportional to the applied voltage driving the piezoelectric transducer. In the size-dependent particle separation, the particle mixture flowing through the acoustic FFF channel experienced an acoustic radiation force in the gravitational direction. As a result, suppressing the diffusion of small particles, particles were transported along the bottom surface of the channel with the local velocity of the carrier liquid at the particle center. The developed acoustic FFF device successfully fractionated a fluorescent micro-particle mixture (1, 3, 5, and 10 μm diameter), whereas the 3 and 5 μm particles were not fractionated in the FFF device using only the gravitational force field due to the diffusion of 3 μm particles.

摘要

一种基于声力学场在载流液中对微颗粒混合物按粒径进行分离的声学场流分级(FFF)装置。在该装置的声学 FFF 通道中,由 2.02 MHz 正弦信号驱动的压电换能器产生的超声波在载流液中传播,并在通道高度上建立起四分之一波长的超声波驻波场。实验证明,在通道底部表面存在声压节点的声场可以减小静止液体中颗粒扩散层的厚度,厚度与驱动压电换能器的外加电压成正比。在尺寸相关的颗粒分离中,流过声学 FFF 通道的颗粒混合物在重力方向上受到声辐射力的作用。结果,小颗粒的扩散受到抑制,颗粒沿着通道底部表面,以颗粒中心处的载流液体局部速度被输送。所开发的声学 FFF 装置成功地对荧光微颗粒混合物(1、3、5 和 10 μm 直径)进行了分级,而在仅使用重力场的 FFF 装置中,由于 3 μm 颗粒的扩散,3 和 5 μm 颗粒无法进行分级。

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