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一种带有新型阀的喷嘴/扩散器微泵的比较研究。

A comparative study of nozzle/diffuser micropumps with novel valves.

机构信息

Green Energy and Environment Research Laboratories, Industrial Technology Research Institute, Hsinchu 31040, Taiwan.

出版信息

Molecules. 2012 Feb 22;17(2):2178-87. doi: 10.3390/molecules17022178.

Abstract

This study conducts an experimental study concerning the improvement of nozzle/diffuser micropump design using some novel no-moving-part valves. A total of three micropumps, including two enhancement structures having two-fin or obstacle structure and one conventional micro nozzle/diffuser design, are made and tested in this study. It is found that dramatic increase of the pressure drops across the designed micro nozzles/diffusers are seen when the obstacle or fin structure is added. The resultant maximum flow rates are 47.07 mm³/s and 53.39 mm³/s, respectively, for the conventional micro nozzle/diffuser and the added two-fin structure in micro nozzle/diffuser operated at a frequency of 400 Hz. Yet the mass flow rate for two-fin design surpasses that of conventional one when the frequency is below 425 Hz but the trend is reversed with a further increase of frequency. This is because the maximum efficiency ratio improvement for added two-fin is appreciably higher than the other design at a lower operating frequency. In the meantime, despite the efficiency ratio of the obstacle structure also reveals a similar trend as that of two-fin design, its significant pressure drop (flow resistance) had offset its superiority at low operating frequency, thereby leading to a lesser flow rate throughout the test range.

摘要

本研究针对使用一些新颖的无动件阀改进喷嘴/扩散器微泵设计进行了实验研究。本研究共制作和测试了三个微泵,包括具有两鳍或障碍物结构的两个增强结构和一个传统的微喷嘴/扩散器设计。结果发现,当添加障碍物或鳍结构时,设计的微喷嘴/扩散器的压降会显著增加。在频率为 400 Hz 时,传统微喷嘴/扩散器和添加两鳍结构的微喷嘴/扩散器的最大流量分别为 47.07 mm³/s 和 53.39 mm³/s。然而,当频率低于 425 Hz 时,两鳍设计的质量流量超过传统设计,但随着频率的进一步增加,趋势发生逆转。这是因为在较低的工作频率下,添加两鳍的最大效率比提高明显高于其他设计。同时,尽管障碍物结构的效率比也呈现出与两鳍设计相似的趋势,但它显著的压降(流动阻力)抵消了其在低工作频率下的优势,从而导致在整个测试范围内的流量较小。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/035a/6268644/129af412ad29/molecules-17-02178-g001.jpg

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