Analytical Analysis of Flexible Microfluidic Based Pressure Sensor Based on Triple-Channel Design

In designing a flexible microfluidic-based pressure sensor, the microchannel plays an important role in maximizing the sensor's performance. Similarly, the material used for the sensor's membrane is crucial in achieving optimal performance. This study presents an analytical analysis and FE...

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Published in:EMITTER-INTERNATIONAL JOURNAL OF ENGINEERING TECHNOLOGY
Main Authors: Ho, Jim Lau Tze; Nawi, Mohd Norzaidi Mat; Rahman, Mohamad Faizal Abd
Format: Article
Language:English
Published: POLITEKNIK ELEKTRONIKA NEGERI SURABAYA 2023
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001155861500001
author Ho
Jim Lau Tze; Nawi
Mohd Norzaidi Mat; Rahman
Mohamad Faizal Abd
spellingShingle Ho
Jim Lau Tze; Nawi
Mohd Norzaidi Mat; Rahman
Mohamad Faizal Abd
Analytical Analysis of Flexible Microfluidic Based Pressure Sensor Based on Triple-Channel Design
Engineering
author_facet Ho
Jim Lau Tze; Nawi
Mohd Norzaidi Mat; Rahman
Mohamad Faizal Abd
author_sort Ho
spelling Ho, Jim Lau Tze; Nawi, Mohd Norzaidi Mat; Rahman, Mohamad Faizal Abd
Analytical Analysis of Flexible Microfluidic Based Pressure Sensor Based on Triple-Channel Design
EMITTER-INTERNATIONAL JOURNAL OF ENGINEERING TECHNOLOGY
English
Article
In designing a flexible microfluidic-based pressure sensor, the microchannel plays an important role in maximizing the sensor's performance. Similarly, the material used for the sensor's membrane is crucial in achieving optimal performance. This study presents an analytical analysis and FEA simulation of the membrane and microchannel of the flexible pressure sensor, aimed at optimizing it design and material selection. Different types of materials, including two commonly used polymers, Polyimide (PI) and Polydimethylsiloxane (PDMS) were evaluated. Moreover, different designs of the microchannel, including single-channel, double-channel, and triple-channel, were analyzed. The applied pressure, width of the microchannel, and length of the microchannel were varied to study the normalized resistance of the microchannel and maximize the performance of the pressure sensor. The results showed that the triple-channel design produced the highest normalized resistance. To achieve maximum performance, it is found that using a membrane with a large area facing the applied pressure was optimal in terms of dimensions. In conclusion, optimizing the microchannel and membrane design and material selection is crucial in improving the overall performance of flexible microfluidic-based pressure sensors.
POLITEKNIK ELEKTRONIKA NEGERI SURABAYA
2355-391X
2443-1168
2023
11
2
10.24003/emitter.v11i2.798
Engineering
gold
WOS:001155861500001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001155861500001
title Analytical Analysis of Flexible Microfluidic Based Pressure Sensor Based on Triple-Channel Design
title_short Analytical Analysis of Flexible Microfluidic Based Pressure Sensor Based on Triple-Channel Design
title_full Analytical Analysis of Flexible Microfluidic Based Pressure Sensor Based on Triple-Channel Design
title_fullStr Analytical Analysis of Flexible Microfluidic Based Pressure Sensor Based on Triple-Channel Design
title_full_unstemmed Analytical Analysis of Flexible Microfluidic Based Pressure Sensor Based on Triple-Channel Design
title_sort Analytical Analysis of Flexible Microfluidic Based Pressure Sensor Based on Triple-Channel Design
container_title EMITTER-INTERNATIONAL JOURNAL OF ENGINEERING TECHNOLOGY
language English
format Article
description In designing a flexible microfluidic-based pressure sensor, the microchannel plays an important role in maximizing the sensor's performance. Similarly, the material used for the sensor's membrane is crucial in achieving optimal performance. This study presents an analytical analysis and FEA simulation of the membrane and microchannel of the flexible pressure sensor, aimed at optimizing it design and material selection. Different types of materials, including two commonly used polymers, Polyimide (PI) and Polydimethylsiloxane (PDMS) were evaluated. Moreover, different designs of the microchannel, including single-channel, double-channel, and triple-channel, were analyzed. The applied pressure, width of the microchannel, and length of the microchannel were varied to study the normalized resistance of the microchannel and maximize the performance of the pressure sensor. The results showed that the triple-channel design produced the highest normalized resistance. To achieve maximum performance, it is found that using a membrane with a large area facing the applied pressure was optimal in terms of dimensions. In conclusion, optimizing the microchannel and membrane design and material selection is crucial in improving the overall performance of flexible microfluidic-based pressure sensors.
publisher POLITEKNIK ELEKTRONIKA NEGERI SURABAYA
issn 2355-391X
2443-1168
publishDate 2023
container_volume 11
container_issue 2
doi_str_mv 10.24003/emitter.v11i2.798
topic Engineering
topic_facet Engineering
accesstype gold
id WOS:001155861500001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001155861500001
record_format wos
collection Web of Science (WoS)
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