Modeling and optimization of planar microcoils

Magnetic actuation has emerged as a useful tool for manipulating particles, droplets and biological samples in microfluidics. A planar coil is one of the suitable candidates for magnetic actuation and has the potential to be integrated in digital microfluidic devices. A simple model of microcoils is...

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Main Authors: Beyzavi, Ali, Nguyen, Nam-Trung
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2012
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Online Access:https://hdl.handle.net/10356/94205
http://hdl.handle.net/10220/7812
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-942052023-03-04T17:18:17Z Modeling and optimization of planar microcoils Beyzavi, Ali Nguyen, Nam-Trung School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical engineering Magnetic actuation has emerged as a useful tool for manipulating particles, droplets and biological samples in microfluidics. A planar coil is one of the suitable candidates for magnetic actuation and has the potential to be integrated in digital microfluidic devices. A simple model of microcoils is needed to optimize their use in actuation applications. This paper first develops an analytical model for calculating the magnetic field of a planar microcoil. The model was validated by experimental data from microcoils fabricated on printed circuit boards (PCB). The model was used for calculating the field strength and the force acting on a magnetic object. Finally, the effect of different coil parameters such as the magnitude of the electric current, the gap between the wires and the number of wire segments is discussed. Both analytical and experimental results show that a smaller gap size between wire segments, more wire segments and a higher electric current can increase both the magnitude and the gradient of the magnetic field, and consequently cause a higher actuating force. The planar coil analyzed in the paper is suitable for applications in magnetic droplet-based microfluidics. Accepted version 2012-05-03T08:48:21Z 2019-12-06T18:52:25Z 2012-05-03T08:48:21Z 2019-12-06T18:52:25Z 2008 2008 Journal Article Beyzavi, A., & Nguyen, N. T. (2008). Modeling and Optimization of Planar Microcoils. Journal of Micromechanics and Microengineering, 18(9). https://hdl.handle.net/10356/94205 http://hdl.handle.net/10220/7812 10.1088/0960-1317/18/9/095018 140762 en Journal of micromechanics and microengineering © 2008 IOP Publishing Ltd. This is the author created version of a work that has been peer reviewed and accepted for publication by Journal of Micromechanics and Microengineering, IOP Publishing Ltd. It incorporates referee’s comments but changes resulting from the publishing process, such as copyediting, structural formatting, may not be reflected in this document. The published version is available at: DOI:[http://dx.doi.org.ezlibproxy1.ntu.edu.sg/10.1088/0960-1317/18/9/095018]. 13 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Mechanical engineering
spellingShingle DRNTU::Engineering::Mechanical engineering
Beyzavi, Ali
Nguyen, Nam-Trung
Modeling and optimization of planar microcoils
description Magnetic actuation has emerged as a useful tool for manipulating particles, droplets and biological samples in microfluidics. A planar coil is one of the suitable candidates for magnetic actuation and has the potential to be integrated in digital microfluidic devices. A simple model of microcoils is needed to optimize their use in actuation applications. This paper first develops an analytical model for calculating the magnetic field of a planar microcoil. The model was validated by experimental data from microcoils fabricated on printed circuit boards (PCB). The model was used for calculating the field strength and the force acting on a magnetic object. Finally, the effect of different coil parameters such as the magnitude of the electric current, the gap between the wires and the number of wire segments is discussed. Both analytical and experimental results show that a smaller gap size between wire segments, more wire segments and a higher electric current can increase both the magnitude and the gradient of the magnetic field, and consequently cause a higher actuating force. The planar coil analyzed in the paper is suitable for applications in magnetic droplet-based microfluidics.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Beyzavi, Ali
Nguyen, Nam-Trung
format Article
author Beyzavi, Ali
Nguyen, Nam-Trung
author_sort Beyzavi, Ali
title Modeling and optimization of planar microcoils
title_short Modeling and optimization of planar microcoils
title_full Modeling and optimization of planar microcoils
title_fullStr Modeling and optimization of planar microcoils
title_full_unstemmed Modeling and optimization of planar microcoils
title_sort modeling and optimization of planar microcoils
publishDate 2012
url https://hdl.handle.net/10356/94205
http://hdl.handle.net/10220/7812
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