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Design and analysis of a microfluidic bus network with bypass channels

机译:具有旁路通道的微流总线网络的设计与分析

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Microfluidics is a multidisciplinary field of research that deals with elementary hydraulic circuits with channels of micrometer size. At this scale, fluids exhibit very specific patterns that cannot be observed at the macro-scale. In particular, vortex forces become negligible, so that the behavior of fluids in the circuit becomes easily controllable and predictable. This technology is currently used in medicine and chemistry to perform specific tasks, such as blood analysis, DNA sequencing, and others. The interest on this technology has been increasing over the last few years and, recently, microfluidic circuits capable of performing simple logical operations have been proposed and experimentally tested, paving the way to a new research branch known as microfluidic networking. In this paper we analyze the design of a microfluidic network with a bus topology, where multiple microfluidic machines are connected to a main channel by means of passive switching elements, realized as T-junctions with bypass (shunt). We mathematically model the system and find the rules to be followed for proper design and dimensioning of such a microfluidic network. We then propose a preliminary performance analysis that gives some insights into the complex interrelations among the different elements of the microfluidic network.
机译:微流体学是一个多学科的研究领域,涉及具有微米尺寸通道的基本液压回路。在这种规模下,流体表现出非常特殊的模式,在宏观尺度上无法观察到。特别地,涡流力可忽略不计,从而回路中流体的行为变得易于控制和可预测。该技术当前在医学和化学领域中用于执行特定任务,例如血液分析,DNA测序等。在过去的几年中,对该技术的兴趣一直在增长,最近,已经提出并进行了能够执行简单逻辑运算的微流体电路并进行了实验测试,这为被称为微流体网络的新研究分支铺平了道路。在本文中,我们分析了具有总线拓扑的微流体网络的设计,其中多个微流体机器通过无源开关元件(实现为带旁路(分流)的T型结)连接到主通道。我们对系统进行数学建模,并找到正确设计和确定此类微流体网络尺寸所要遵循的规则。然后,我们提出了初步的性能分析,从而对微流体网络的不同元素之间的复杂相互关系提供了一些见识。

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