Title :
Characterization and Theoretical Analysis of Rapidly Prototyped Capillary Action Autonomous Microfluidic Systems
Author :
Mohammed, Mazher Iqbal ; Desmulliez, Marc Philippe Y.
Author_Institution :
Microsyst. Eng. Centre, Heriot-Watt Univ., Edinburgh, UK
Abstract :
Capillary action arising from surface tension-based forces has been demonstrated to be an effective means of passively actuating various fluids through simple and sophisticated microfluidic channel networks. Systems based on this technique are advantageous compared with standard pumping strategies, as they have zero power requirements, are readily integrated into the overall fluidic chip design, and can be fabricated rapidly in a single manufacturing step. This paper comprehensively investigates time lapsed average velocity profiles of various capillary action microfluidic systems, including channels and pumping structures, and compares experimental data against prominent, competing, and flow-based theoretical models. We demonstrate that the average meniscus flow velocity of CO2 laser ablated capillary systems can be adequately predicted and characterize smooth fluidic velocity profiles in simple microchannels and complex interlinking channel pump/filling structures. Such systems offer a useful, rapid, and low cost alternative to traditional fluidic actuation and flow control systems such as those found in on-chip based biological and chemical analysis.
Keywords :
capillary waves; flow control; laser ablation; microchannel flow; prototypes; surface tension; autonomous microfluidic system; carbon dioxide laser ablated capillary system; complex interlinking channel pump-filling structure; flow control system; flow-based theoretical models; fluidic chip design; microfluidic channel networks; on-chip based biological analysis; on-chip based chemical analysis; rapidly prototyped capillary action; single manufacturing step; smooth fluidic velocity profile; standard pumping structure; surface tension-based forces; time lapsed average velocity profile; Laser ablation; Liquids; Manufacturing; Microchannel; Resistance; Substrates; System-on-chip; Microfluidics; autonomous fluidic system; autonomous fluidic system.; capillary action; laser direct write; micropump; rapid prototyping;
Journal_Title :
Microelectromechanical Systems, Journal of
DOI :
10.1109/JMEMS.2014.2314470