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实现自动化和温度控制的微粒子图像测速测量,从而能够对长期稳定的微通道声悬浮特性进行表征。

Automated and temperature-controlled micro-PIV measurements enabling long-term-stable microchannel acoustophoresis characterization.

机构信息

Department of Measurement Technology and Industrial Electrical Engineering, Lund University, PO-Box 118, S-221 00, Lund, Sweden.

出版信息

Lab Chip. 2011 Dec 21;11(24):4152-64. doi: 10.1039/c1lc20637k. Epub 2011 Oct 12.

Abstract

We present a platform for micro particle image velocimetry (μPIV), capable of carrying out full-channel, temperature-controlled, long-term-stable, and automated μPIV-measurement of microchannel acoustophoresis with uncertainties below 5% and a spatial resolution in the order of 20 μm. A method to determine optimal μPIV-settings for obtaining high-quality results of the spatially inhomogeneous acoustophoretic velocity fields of large dynamical range is presented. In particular we study the dependence of the results on the μPIV interrogation window size and the number of repeated experiments. The μPIV-method was further verified by comparing it with our previously published particle tracking method. Using the μPIV platform we present a series of high-resolution measurements of the acoustophoretic velocity field as a function of the driving frequency, the driving voltage, and the resonator temperature. Finally, we establish a direct and consistent connection between the obtained acoustophoretic velocity fields, and continuous flow mode acoustophoresis, commonly used in applications.

摘要

我们提出了一个用于微粒子图像测速(μPIV)的平台,能够进行全通道、温度控制、长期稳定和自动化的微通道声悬浮 μPIV 测量,不确定度低于 5%,空间分辨率在 20 μm 左右。提出了一种确定最佳 μPIV 设置的方法,以获得大动态范围的空间不均匀声悬浮速度场的高质量结果。特别是,我们研究了结果对 μPIV 询问窗口大小和重复实验次数的依赖性。通过将 μPIV 方法与我们之前发表的粒子跟踪方法进行比较,进一步验证了该方法。使用 μPIV 平台,我们展示了一系列高分辨率的声悬浮速度场测量结果,这些结果与驱动频率、驱动电压和谐振器温度有关。最后,我们建立了获得的声悬浮速度场与连续流动模式声悬浮之间的直接和一致的联系,连续流动模式声悬浮通常用于应用中。

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