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用于泵送和混合的膜激活微流体旋转装置。

Membrane-activated microfluidic rotary devices for pumping and mixing.

作者信息

Tseng Hao-Yu, Wang Chih-Hao, Lin Wang-Ying, Lee Gwo-Bin

机构信息

Department of Engineering Science, National Cheng Kung University, Tainan, Taiwan, 701.

出版信息

Biomed Microdevices. 2007 Aug;9(4):545-54. doi: 10.1007/s10544-007-9062-6.

Abstract

Microfluidic devices are operated at a low-Reynolds-number flow regime such that the transportation and mixing of fluids are naturally challenging. There is still a great need to integrate fluid control systems such as pumps, valves and mixers with other functional microfluidic devices to form a micro-total-analysis-system. This study presents a new pneumatic microfluidic rotary device capable of transporting and mixing two different kinds of samples in an annular microchannel by using MEMS (Micro-electro-mechanical-systems) technology. Pumping and mixing can be achieved using a single device with different operation modes. The micropump has four membranes with an annular layout and is compact in size. The new device has a maximum pumping rate of 165.7 microL/min at a driving frequency of 17 Hz and an air pressure of 30 psi. Experimental data show that the pumping rate increases as higher air pressure and driving frequency are applied. In addition, not only can the microfluidic rotary device work as a peristaltic pumping device, but it also is an effective mixing device. The performance of the micromixer is extensively characterized. Experimental data indicate that a mixing index as high as 96.3% can be achieved. The developed microfluidic rotary device can be easily integrated with other microfluidic devices due to its simple and reliable PDMS fabrication process. The development of the microfluidic rotary device can be promising for micro-total-analysis-systems.

摘要

微流控装置在低雷诺数流动状态下运行,使得流体的传输和混合自然具有挑战性。仍然非常需要将诸如泵、阀和混合器等流体控制系统与其他功能性微流控装置集成在一起,以形成一个微全分析系统。本研究提出了一种新型气动微流控旋转装置,该装置能够利用微机电系统(MEMS)技术在环形微通道中传输和混合两种不同的样品。通过使用具有不同操作模式的单个装置即可实现泵送和混合。该微型泵有四个呈环形布局的膜片,尺寸紧凑。在驱动频率为17Hz且气压为30psi时,新装置的最大泵送速率为165.7微升/分钟。实验数据表明,随着施加更高的气压和驱动频率,泵送速率会增加。此外,该微流控旋转装置不仅可以作为蠕动泵送装置工作,而且还是一种有效的混合装置。对该微混合器的性能进行了广泛表征。实验数据表明,可实现高达96.3%的混合指数。由于其简单可靠的聚二甲基硅氧烷(PDMS)制造工艺,所开发的微流控旋转装置可以很容易地与其他微流控装置集成。微流控旋转装置的发展对于微全分析系统可能具有广阔前景。

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