DocumentCode :
1952057
Title :
A computational study of single cells trapping inside a microfluidic channel
Author :
Khalili, Amelia Ahmad ; Ahmad, Mohd Ridzuan
Author_Institution :
Dept. of Mechatron. & Robotic, Univ. Teknol. Malaysia, Skudai, Malaysia
fYear :
2012
fDate :
17-19 Dec. 2012
Firstpage :
171
Lastpage :
174
Abstract :
The purpose of this paper is to present the simulation results from a computational model of cell-like object flow in a microfluidic device. This work is important because computational models are needed to design miniaturized biomedical devices which leverage microfluidics technology. Microfluidic devices are important for the single cell analysis such as cell adhesion and single cell electrical properties studies which could lead to many significant applications including early disease diagnosis. The aims of this study are to trap a single cell-like object in the micro-well and to obtain the optimized micro-channel water flow rate and micro-well suction rate using finite element analysis. This study presents numerical solutions from the finite element analysis simulation using ABAQUS-FEA software to analyze the effects of suction rate and depth of the micro-well for a single cell trapping in a microfluidic device. According to the simulation results, a single cell-like object able to be trap into the micro-well with the optimized well´s depth and suitable micro-channel´s flow rate and micro-well´s holes suction rate.
Keywords :
bioMEMS; biomedical equipment; cellular biophysics; computational fluid dynamics; finite element analysis; flow simulation; medical computing; microchannel flow; patient diagnosis; software packages; ABAQUS-FEA software; cell adhesion; cell flow computational model; computational single cell trapping study; early disease diagnosis; finite element analysis simulation; flow simulation; microfluidic device; microfluidics technology; microwell hole suction rate; microwell trapping; miniaturized biomedical device design; numerical solutions; optimized microchannel water flow rate; single cell analysis; single cell electrical properties; well depth; cell trapping; finite element; microfluidic; single cell;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Biomedical Engineering and Sciences (IECBES), 2012 IEEE EMBS Conference on
Conference_Location :
Langkawi
Print_ISBN :
978-1-4673-1664-4
Type :
conf
DOI :
10.1109/IECBES.2012.6498171
Filename :
6498171
Link To Document :
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