DocumentCode :
651494
Title :
Design, realisation and validation of microfluidic stochastic mixers integrable in bioanalytical systems using CFD modeling
Author :
Toth, Erzsebet ; Ivan, Kraljevski ; Furjes, Peter ; Fekete, Z. ; Holczer, E.G.
Author_Institution :
Fac. of Inf. Technol., Pazmany Peter Catholic Univ., Budapest, Hungary
fYear :
2013
fDate :
Oct. 31 2013-Nov. 2 2013
Firstpage :
266
Lastpage :
269
Abstract :
In this work we present the design aspects of special microfluidic structures applicable to dilute and transport analyte solutions (such as whole blood) to the sensing area of biosensors. Our goal is to design and realise a reliable microfluidic system which is applicable for effective sample transport and can accomplish simple sample preparation functions such as mixing to ensure homogeneous concentration distribution of the species along the fluidic channel. The behaviour of different chaotic mixers were analysed by numerical modeling and experimentally to determine their efficiency. At first we used the concentration distribution method, however because of numerical diffusion this required higher mesh resolutions. Using the particle tracing method is more efficient according to the experimental results and requires lower computational effort. The microstructures were realised by micro-fabrication in polydimethylsiloxane (PDMS) and integrated into a real microfluidic transport system. The functional performance was verified by biological analyte.
Keywords :
bioMEMS; biodiffusion; biosensors; computational fluid dynamics; mesh generation; microchannel flow; microfabrication; microsensors; mixing; CFD modeling; PDMS; bioanalytical systems; biological analyte; biosensor sensing area; chaotic mixers; computational effort; concentration distribution method; design aspects; dilute analyte solution; fluidic channel; functional performance; homogeneous concentration distribution; mesh resolutions; microfabrication; microfluidic stochastic mixer; microfluidic structure; microstructure; numerical diffusion; numerical modeling; particle tracing method; polydimethylsiloxane; real microfluidic transport system; reliable microfluidic system; simple sample preparation function; transport analyte solution; whole blood; Computational modeling; Mathematical model; Microfluidics; Mixers; Numerical models; Polymers; Resists; chaotic advection; computational fluid dynamics (CFD); lab-on-a-chip; micromixers; polymer microfluidics;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Biomedical Circuits and Systems Conference (BioCAS), 2013 IEEE
Conference_Location :
Rotterdam
Type :
conf
DOI :
10.1109/BioCAS.2013.6679690
Filename :
6679690
Link To Document :
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