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High Speed Droplet-based Delivery System for Passive Pumping in Microfluidic Devices

机译:基于微滴的高速液滴输送系统,用于被动泵送

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摘要

A novel microfluidic system has been developed that uses the phenomenon of passive pumping along with a user controlled droplet based fluid delivery system. Passive pumping is the phenomenon by which surface tension induced pressure differences drive fluid movement in closed channels. The automated fluid delivery system consists of a set of voltage controlled valves with micro-nozzles connected to a fluid reservoir and a control system. These voltage controlled valves offer a volumetrically precise way to deliver fluid droplets to the inlet of a microfluidic device in a high frequency manner. Based on the dimensions demonstrated in the current study example, the system is capable of flowing 4 milliliters per minute (through a 2.2mm by 260um cross-sectional channel). Based on these same channel dimensions, fluid exchange of a point inside the channel can be achieved in as little as eight milliseconds. It is observed that there is interplay between momentum of the system (imparted by a combination of the droplets created by the valves and the fluid velocity in the channel), and the surface tension of the liquid. Where momentum provides velocity to the fluid flow (or vice-versa), equilibration of surface tension at the inlet provides a sudden stop to any flow. This sudden stop allows the user to control the flow characteristics of the channel and opens the door for a variety of biological applications, ranging anywhere from reagent delivery to drug-cell studies. It is also observed that when nozzles are aimed at the inlet at shallow angles, the droplet momentum can cause additional interesting fluid phenomena, such as mixing of multiple droplets in the inlet.
机译:已经开发出一种新颖的微流体系统,该系统利用了被动泵送现象以及用户控制的基于液滴的流体输送系统。被动泵送是表面张力引起的压差驱动流体在封闭通道中运动的现象。自动化的流体输送系统由一组电压控制阀组成,该阀具有连接到储液罐的微喷嘴和控制系统。这些电压控制阀提供了一种体积精确的方式,可以将液滴以高频方式输送到微流体设备的入口。根据当前研究示例中展示的尺寸,该系统每分钟能够流动4毫升(通过2.2mm x 260um的横截面通道)。基于这些相同的通道尺寸,通道内一个点的流体交换可以在短短的八毫秒内实现。可以观察到,系统的动量(由阀门产生的液滴和通道中的流体速度共同作用)与液体的表面张力之间存在相互作用。在动量为流体流动提供速度的情况下(反之亦然),入口处表面张力的平衡使任何流动都突然停止。这种突然停止使用户可以控制通道的流动特性,并为从试剂输送到药物细胞研究的各种生物应用打开了大门。还观察到,当喷嘴以浅角度对准入口时,液滴动量会引起其他有趣的流体现象,例如入口中多个液滴的混合。

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