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Standing Air Bubble-Based Micro-Hydraulic Capacitors for Flow Stabilization in Syringe Pump-Driven Systems

机译:用于注射器泵驱动系统的流量稳定的常设气泡微液压电容器

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摘要

Unstable liquid flow in syringe pump-driven systems due to the low-speed vibration of the step motor is commonly observed as an unfavorable phenomenon, especially when the flow rate is relatively small. Upon the design of a convenient and cost-efficient microfluidic standing air bubble system, this paper studies the physical principles behind the flow stabilization phenomenon of the bubble-based hydraulic capacitors. A bubble-based hydraulic capacitor consists of three parts: tunable microfluidic standing air bubbles in specially designed crevices on the fluidic channel wall, a proximal pneumatic channel, and porous barriers between them. Micro-bubbles formed in the crevices during liquid flow and the volume of the bubble can be actively controlled by the pneumatic pressure changing in the proximal channel. When there is a flowrate fluctuation from the upstream, the flexible air-liquid interface would deform under the pressure variation, which is analogous to the capacitive charging/discharging process. The theoretical model based on Euler law and the microfluidic equivalent circuit was developed to understand the multiphysical phenomenon. Experimental data characterize the liquid flow stabilization performance of the flow stabilizer with multiple key parameters, such as the number and the size of microbubbles. The developed bubble-based hydraulic capacitor could minimize the flow pulses from syringe pumping by 75.3%. Furthermore, a portable system is demonstrated and compared with a commercial pressure-driven flow system. This study can enhance the understanding of the bubble-based hydraulic capacitors that would be beneficial in microfluidic systems where the precise and stable liquid flow is required.
机译:在注射器泵驱动的系统由于步进电机的低速振动不稳定液体流通常观察到的不利的现象,特别是当流率相对较小。在一个方便的和成本有效的微流体站立气泡系统的设计,本文研究后面基于气泡液压电容器的流动稳定化现象的物理原理。基于气泡的液压电容器由三个部分组成:可调谐微流体站立气泡在流体通道壁,近端气动通道,以及它们之间的多孔屏障专门设计的缝隙。微气泡的液体流动过程中形成在裂缝和气泡的体积可以通过气动压力在近端信道改变被主动地控制。当存在来自上游的流速波动,柔性空气 - 液体界面会产生的压力变化,这是类似于电容的充电/放电过程下变形。基于欧拉法和微流体等效电路的理论模型来理解的现象多物理。实验数据表征与多个关键参数,如数量和微泡的尺寸的流动稳定器的液体流的稳定的性能。的开发了基于气泡液压电容器可以通过75.3%最小化从注射器泵的流动的脉冲。此外,便携式系统证明和与商业压力驱动的流动系统进行比较。该研究可增强基于气泡液压电容器,将是在其中需要精确和稳定的液体流动的微流体系统有益的理解。

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