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首页> 外文期刊>Lab on a chip >Investigating the fluid dynamics of rapid processes within microfluidic devices using bright-field microscopy
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Investigating the fluid dynamics of rapid processes within microfluidic devices using bright-field microscopy

机译:使用明场显微镜研究微流体装置内快速过程的流体动力学

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摘要

The widespread application of microfluidic devices in the biological and chemical sciences requires the implementation of complex designs and geometries, which in turn leads to atypical fluid dynamic phenomena. Accordingly, a complete understanding of fluid dynamics in such systems is key in the facile engineering of novel and efficient analytical tools. Herein, we present an accurate approach for studying the fluid dynamics of rapid processes within microfluidic devices using bright-field microscopy with white light illumination and a standard high-speed camera. Specifically, we combine Ghost Particle Velocimetry and the detection of moving objects in automated video surveillance to track submicron size tracing particles via cross correlation between the speckle patterns of successive images. The efficacy of the presented technique is demonstrated by measuring the flow field over a square pillar (80 mu m x 80 mu m) in a 200 mu m wide microchannel at high volumetric flow rates. Experimental results are in excellent agreement with those obtained via computational fluid dynamics simulations. The method is subsequently used to study the dynamics of droplet generation at a flow focusing microfluidic geometry. A unique feature of the presented technique is the ability to perform velocimetry analysis of high-speed phenomena, which is not possible using micron-resolution particle image velocimetry (mu PIV) approaches based on confocal or fluorescence microscopy.
机译:微流体装置在生物和化学科学中的广泛应用要求实现复杂的设计和几何形状,从而导致非典型的流体动力学现象。因此,在新颖有效的分析工具的简便工程设计中,全面了解此类系统中的流体动力学至关重要。在这里,我们提出了一种精确的方法,用于研究使用白光照明的明场显微镜和标准高速相机在微流体设备内快速过程的流体动力学。具体而言,我们结合了Ghost粒子测速技术和自动视频监控中的移动物体检测功能,以通过连续图像的斑点图案之间的互相关性来跟踪亚微米尺寸的追踪粒子。通过以高体积流量在200微米宽的微通道中测量方柱(80微米x 80微米)上的流场,证明了所提出技术的有效性。实验结果与通过计算流体动力学模拟获得的结果非常一致。该方法随后用于研究在聚焦微流几何学的液滴产生的动力学。所提出的技术的独特功能是能够对高速现象进行测速分析,而使用基于共聚焦或荧光显微镜的微米级分辨率的粒子图像测速(mu PIV)方法是不可能实现的。

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