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用于高通量液体输送的微流控被动阀流量调节性能分析

Flow Regulation Performance Analysis of Microfluidic Passive Valve for High Throughput Liquid Delivery.

作者信息

Su Qi, Chen Weiran, Chen Weiping, Jin Zhijiang, Lin Zhenhao

机构信息

State Key Laboratory of Fluid Power and Mechatronic Systems, Zhejiang University, Hangzhou 310027, China.

Institute of Process Equipment, College of Energy Engineering, Zhejiang University, Hangzhou 310027, China.

出版信息

Micromachines (Basel). 2022 Apr 28;13(5):687. doi: 10.3390/mi13050687.

Abstract

A microfluidic passive valve (MPV) is important for precise flow control, and it determines the reliability of the microfluidic system. In this paper, a novel MPV capable of delivering a constant flow rate independently of inlet pressure changes is proposed. The flow rate of the MPV is adjusted by the difference between the fluid force on the upper surface of the valve core and the spring force. The constant flow rate of the MPV is maintained by automatically changing the size of the gap channel formed by the groove on the valve core and the baffle on the valve body. The nearly constant flow rate of the MPV is 6.26 mL/min, with a variation of 6.5% under the inlet pressure varied from 1.25 kPa to 3.5 kPa. In addition, the flow characteristics of the MPV are analyzed by numerical simulation. With the increase in the inlet pressure, the maximum velocity gradually increases, while the increment of the maximum velocity decreases. In the movement process of the valve core, the region of pressure drop becomes larger. This work has a certain reference value for the design and research of the MPVs with high throughput liquid delivery.

摘要

微流控被动阀(MPV)对于精确流量控制至关重要,它决定了微流控系统的可靠性。本文提出了一种新型的MPV,它能够独立于入口压力变化提供恒定的流速。通过阀芯上表面的流体力与弹簧力之间的差值来调节MPV的流速。通过自动改变由阀芯上的凹槽和阀体上的挡板形成的间隙通道的大小,来维持MPV的恒定流速。MPV的近乎恒定流速为6.26 mL/min,在入口压力从1.25 kPa变化到3.5 kPa时变化率为6.5%。此外,通过数值模拟分析了MPV的流动特性。随着入口压力的增加,最大速度逐渐增大,而最大速度的增量减小。在阀芯的运动过程中,压降区域变大。这项工作对于高流量液体输送的MPV的设计和研究具有一定的参考价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3135/9143073/9d6973df57c7/micromachines-13-00687-g001.jpg

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