Christoforidis Theodore, Werner Erik M, Hui Elliot E, Eddington David T
Department of Bioengineering, University of Illinois at Chicago, Chicago, IL, 60607, USA.
Department of Biomedical Engineering, University of California, Irvine, CA, 92697, USA.
Biomed Microdevices. 2016 Aug;18(4):74. doi: 10.1007/s10544-016-0096-5.
Microfluidic devices with integrated pneumatic logic enable automated fluid handling without requiring external control instruments. These chips offer the additional advantage that they may be powered by vacuum and do not require an electricity source. This work describes a microfluidic converging-diverging (CD) nozzle optimized to generate vacuum at low input pressures, making it suitable for microfluidic applications including powering integrated pneumatic logic. It was found that efficient vacuum pressure was generated for high aspect ratios of the CD nozzle constriction (or throat) width to height and diverging angle of 3.6(o). In specific, for an inlet pressure of 42.2 psia (290.8 kPa) and a volumetric flow rate of approximately 1700 sccm, a vacuum pressure of 8.03 psia (55.3 kPa) was generated. To demonstrate the capabilities of our converging - diverging nozzle device, we connected it to a vacuum powered peristaltic pump driven by integrated pneumatic logic and obtained tunable flow rates from 0 to 130 μL/min. Finally, we demonstrate a proof of concept system for use where electricity and vacuum pressure are not readily available by powering a CD nozzle with a bicycle tire pump and pressure regulator. This system is able to produce a stable vacuum sufficient to drive pneumatic logic, and could be applied to power automated microfluidics in limited resource settings.
集成气动逻辑的微流控设备能够实现自动流体处理,无需外部控制仪器。这些芯片还有一个额外的优点,即它们可以由真空供电,不需要电源。这项工作描述了一种微流控收缩-扩张(CD)喷嘴,该喷嘴经过优化,可在低输入压力下产生真空,适用于包括为集成气动逻辑供电在内的微流控应用。研究发现,当CD喷嘴收缩(或喉部)宽度与高度的高宽比以及扩张角为3.6°时,能产生高效的真空压力。具体而言,对于42.2 psia(290.8 kPa)的入口压力和大约1700 sccm的体积流量,产生了8.03 psia(55.3 kPa)的真空压力。为了展示我们的收缩-扩张喷嘴装置的能力,我们将其连接到由集成气动逻辑驱动真空的蠕动泵上,并获得了0至130 μL/min的可调流量。最后,我们展示了一个概念验证系统,该系统通过用自行车轮胎泵和压力调节器为CD喷嘴供电,用于电力和真空压力不易获得的地方。该系统能够产生足以驱动气动逻辑的稳定真空,可应用于在资源有限的环境中为自动化微流控设备供电。