DocumentCode :
3282358
Title :
Electromagnetic membrane-pump with an integrated magnetic yoke
Author :
Lederer, Thomas ; Heinisch, Martin ; Hilber, Wolfgang ; Jakoby, Bernhard
Author_Institution :
Inst. for Microelectron. & Microsensors, Johannes Kepler Univ. Linz, Linz, Austria
fYear :
2009
fDate :
25-28 Oct. 2009
Firstpage :
532
Lastpage :
537
Abstract :
Micro fluidics is a fast developing research area and is of interest to many scientific groups. Within microfluidic systems micro pumps transport the fluid to different functional areas of a so called Lab-on-a-chip. Up to now electro-magnetically actuated microfluidic pumps make no use of an essential part of electromagnetic systems: A highly permeable core which leads the magnetic flux and lowers the magnetic resistance. Utilizing the magnetic force which tends to minimize the reluctance of a magnetic system a magnetic actuator was achieved. Another common principle for directing laminar fluid flows, nozzle and diffuser geometries, was simulated and the optimal geometry for different Reynolds numbers was evaluated. The combination of these two improvements allows for a bubble resistive magnetic-reluctance micro-pump with an integrated membrane-like magnetic yoke, which was modeled, fabricated utilizing a simple single layer thin film technology, and tested. The realized device features high pumping forces to actuate viscous fluids, high pumping frequencies (565 Hz and multiples thereof) for a continuous flow and low power consumption. In our contribution we discuss the device design, the underlying theory and first experimental results.
Keywords :
electromagnetic actuators; lab-on-a-chip; laminar flow; magnetic thin film devices; membranes; microchannel flow; micropumps; nozzles; viscosity; Reynolds numbers; bubble resistive magnetic-reluctance micropump; continuous flow; diffuser geometries; electromagnetic actuation; electromagnetic membrane-pump; fluid transport; integrated magnetic yoke; lab-on-a-chip; laminar fluid flows; microfluidics; nozzle geometries; single layer thin film technology; viscous fluids; Electromagnetic forces; Fluidics; Geometry; Lab-on-a-chip; Magnetic cores; Magnetic flux; Magnetic forces; Microfluidics; Micropumps; Pumps;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Sensors, 2009 IEEE
Conference_Location :
Christchurch
ISSN :
1930-0395
Print_ISBN :
978-1-4244-4548-6
Electronic_ISBN :
1930-0395
Type :
conf
DOI :
10.1109/ICSENS.2009.5398295
Filename :
5398295
Link To Document :
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