Numerical investigation of drag force on micro-sized magnetic beads in microchannel with chamber design

Biological cells or bioparticles separation is a primary step in most biological studies. One of the microfluidic bioparticles separation methods is the magnetic-based method. Integrated microfluidic magnetic bioparticle separation device is made up of a microfluidics channel and a magnetic system....

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Main Authors: Vaea, M. A., Abidin, U., Kamaruzaman, N., Zawawi, F. M., Yazid, M. N. A. W. M.
Format: Article
Published: Penerbit Akademia Baru 2019
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Online Access:http://eprints.utm.my/id/eprint/89089/
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spelling my.utm.890892021-01-26T08:44:27Z http://eprints.utm.my/id/eprint/89089/ Numerical investigation of drag force on micro-sized magnetic beads in microchannel with chamber design Vaea, M. A. Abidin, U. Kamaruzaman, N. Zawawi, F. M. Yazid, M. N. A. W. M. TJ Mechanical engineering and machinery Biological cells or bioparticles separation is a primary step in most biological studies. One of the microfluidic bioparticles separation methods is the magnetic-based method. Integrated microfluidic magnetic bioparticle separation device is made up of a microfluidics channel and a magnetic system. From past studies, the design of the microfluidic channel is least discussed in comparison with the magnetic system. To fill this gap, this study has focused on numerical simulation of a microfluidic channel with chamber design and the drag forces experienced by the magnetic beads. Simulation of the microfluidics channel was done with ANSYS Fluent software. The width ratios of trapping chamber and main channel ranged from 1 to 20, the flow rates ranged from 1 μL/min to 100 μL/min, and the bead sizes ranged from 5 μm to 25 μm were used in the numerical investigation. It was discovered that as the width ratio between the trapping chamber and main channel increases, the maximum velocity decreases, causing the Reynold's number to decrease. The pressure drop become greater at higher flow rate. Higher width ratio caused the drag force to reduce at a constant microbead size. At a constant width ratio between the trapping chamber and main channel, larger microbead sizes caused larger drag force. The microfluidic system with width ratio of 20 and flow rate of 1 μL/min produced the lowest drag force, 3.64 x 10 4 pN. Since particle trapping would occur when the magnetic force is larger than the drag force, therefore a high gradient magnetic system which offered high magnetic force was proposed to be integrated with the microfluidics system. Penerbit Akademia Baru 2019-05 Article PeerReviewed Vaea, M. A. and Abidin, U. and Kamaruzaman, N. and Zawawi, F. M. and Yazid, M. N. A. W. M. (2019) Numerical investigation of drag force on micro-sized magnetic beads in microchannel with chamber design. Journal of Advanced Research in Fluid Mechanics and Thermal Sciences, 57 (2). pp. 186-201. ISSN 2289-7879 https://www.scopus.com/record/display.uri?eid=2-s2.0-85065822660&origin=resultslist&sort=plf-f&src=s&st1=
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Vaea, M. A.
Abidin, U.
Kamaruzaman, N.
Zawawi, F. M.
Yazid, M. N. A. W. M.
Numerical investigation of drag force on micro-sized magnetic beads in microchannel with chamber design
description Biological cells or bioparticles separation is a primary step in most biological studies. One of the microfluidic bioparticles separation methods is the magnetic-based method. Integrated microfluidic magnetic bioparticle separation device is made up of a microfluidics channel and a magnetic system. From past studies, the design of the microfluidic channel is least discussed in comparison with the magnetic system. To fill this gap, this study has focused on numerical simulation of a microfluidic channel with chamber design and the drag forces experienced by the magnetic beads. Simulation of the microfluidics channel was done with ANSYS Fluent software. The width ratios of trapping chamber and main channel ranged from 1 to 20, the flow rates ranged from 1 μL/min to 100 μL/min, and the bead sizes ranged from 5 μm to 25 μm were used in the numerical investigation. It was discovered that as the width ratio between the trapping chamber and main channel increases, the maximum velocity decreases, causing the Reynold's number to decrease. The pressure drop become greater at higher flow rate. Higher width ratio caused the drag force to reduce at a constant microbead size. At a constant width ratio between the trapping chamber and main channel, larger microbead sizes caused larger drag force. The microfluidic system with width ratio of 20 and flow rate of 1 μL/min produced the lowest drag force, 3.64 x 10 4 pN. Since particle trapping would occur when the magnetic force is larger than the drag force, therefore a high gradient magnetic system which offered high magnetic force was proposed to be integrated with the microfluidics system.
format Article
author Vaea, M. A.
Abidin, U.
Kamaruzaman, N.
Zawawi, F. M.
Yazid, M. N. A. W. M.
author_facet Vaea, M. A.
Abidin, U.
Kamaruzaman, N.
Zawawi, F. M.
Yazid, M. N. A. W. M.
author_sort Vaea, M. A.
title Numerical investigation of drag force on micro-sized magnetic beads in microchannel with chamber design
title_short Numerical investigation of drag force on micro-sized magnetic beads in microchannel with chamber design
title_full Numerical investigation of drag force on micro-sized magnetic beads in microchannel with chamber design
title_fullStr Numerical investigation of drag force on micro-sized magnetic beads in microchannel with chamber design
title_full_unstemmed Numerical investigation of drag force on micro-sized magnetic beads in microchannel with chamber design
title_sort numerical investigation of drag force on micro-sized magnetic beads in microchannel with chamber design
publisher Penerbit Akademia Baru
publishDate 2019
url http://eprints.utm.my/id/eprint/89089/
https://www.scopus.com/record/display.uri?eid=2-s2.0-85065822660&origin=resultslist&sort=plf-f&src=s&st1=
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