Zhang Xinjie, Zhu Zhixian, Xiang Nan, Ni Zhonghua
School of Mechanical Engineering, and Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, Southeast University , Nanjing 211189, China.
Biomicrofluidics. 2016 Oct 28;10(5):054123. doi: 10.1063/1.4966646. eCollection 2016 Sep.
Pressure fluctuations, which invariably occur in microfluidic systems, usually result in the unstable fluid delivery in microfluidic channels. In this work, a novel microfluidic gas damper is proposed and applied for providing stable fluid-driving pressures. Then, a pressure-driven flow setup is constructed to investigate the gas damping characteristics of our damper. Since the pressure-driven flow setup functions as a resistor-capacitor low-pass filter, the damper significantly decreases the amplitude of the input pressures via self-regulating its pneumatic resistance. In addition, the gas volume and pressure frequency are found to have direct effects on the pressure fluctuations. The practical application of the gas damper is examined through a portable pressure-driven system, which consists of an air blower, a gas damper, and a centrifuge tube. By periodically pressing the air blower, precise flow rates with low throughput (∼9.64 l min) and high throughput (∼1367.15 l min) are successfully delivered. Future integration of our microfluidic gas damper with miniaturized pressure generators (e.g., peristaltic or pressure-driven micropumps) can fully exploit the potential of the gas damper for low-cost, portable microfluidics where stable pressures or flow rates are required.
压力波动在微流体系统中总是会出现,通常会导致微流体通道中流体输送不稳定。在这项工作中,提出了一种新型微流体气体阻尼器,并将其应用于提供稳定的流体驱动压力。然后,构建了一个压力驱动流动装置来研究我们的阻尼器的气体阻尼特性。由于压力驱动流动装置起到电阻-电容低通滤波器的作用,该阻尼器通过自我调节其气动阻力显著降低了输入压力的幅度。此外,发现气体体积和压力频率对压力波动有直接影响。通过一个便携式压力驱动系统对气体阻尼器的实际应用进行了研究,该系统由一个鼓风机、一个气体阻尼器和一个离心管组成。通过定期按压鼓风机,成功地输送了低通量(约9.64升/分钟)和高通量(约1367.15升/分钟)的精确流速。我们的微流体气体阻尼器与小型压力发生器(如蠕动或压力驱动微泵)的未来集成可以充分发挥气体阻尼器在需要稳定压力或流速且成本低、便于携带的微流体领域的潜力。