A MINI REVIEW ON THE EFFECTS OF SURFACE ROUGHNESS IN MICROFIUIDICS CHANNELS

The effects of surface roughness at low Reynolds numbers are more pronounced and critical in microchannels due to the relative size of roughness to channel dimensions. Surface roughness in microfluidic channels originates from the machining process during fabrication. This review examines how surfac...

Full description

Bibliographic Details
Published in:Jurnal Mekanikal
Main Author: Mohamed Rijal M.L.; Mohamed Yusof A.; Mohamed Noor R.; Zubair A.F.
Format: Article
Language:English
Published: Penerbit UTM Press 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85214706081&doi=10.11113%2fjm.v47.548&partnerID=40&md5=dc08c7bd21520c530acd345beae5287a
id 2-s2.0-85214706081
spelling 2-s2.0-85214706081
Mohamed Rijal M.L.; Mohamed Yusof A.; Mohamed Noor R.; Zubair A.F.
A MINI REVIEW ON THE EFFECTS OF SURFACE ROUGHNESS IN MICROFIUIDICS CHANNELS
2024
Jurnal Mekanikal
47

10.11113/jm.v47.548
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85214706081&doi=10.11113%2fjm.v47.548&partnerID=40&md5=dc08c7bd21520c530acd345beae5287a
The effects of surface roughness at low Reynolds numbers are more pronounced and critical in microchannels due to the relative size of roughness to channel dimensions. Surface roughness in microfluidic channels originates from the machining process during fabrication. This review examines how surface roughness, resulting from various manufacturing processes, influences the performance of microfluidic devices. Different patterns of surface roughness generated through techniques such as photolithography, etching, precision machining, and 3D printing are highlighted. These techniques yield distinct surface characteristics that affect critical microchannel properties, including fluid flow, pressure drop, and stress distribution. In addition to that, specific fabrication methods can minimize surface roughness, enhancing the performance of microchannels for applications in diagnostics, lab-on-a-chip systems, and small-scale heat exchangers are addressed. The review provides insights into selecting optimal fabrication techniques to achieve desired performance characteristics in microfluidic devices. © 2024 Penerbit UTM Press. All rights reserved.
Penerbit UTM Press
22893873
English
Article

author Mohamed Rijal M.L.; Mohamed Yusof A.; Mohamed Noor R.; Zubair A.F.
spellingShingle Mohamed Rijal M.L.; Mohamed Yusof A.; Mohamed Noor R.; Zubair A.F.
A MINI REVIEW ON THE EFFECTS OF SURFACE ROUGHNESS IN MICROFIUIDICS CHANNELS
author_facet Mohamed Rijal M.L.; Mohamed Yusof A.; Mohamed Noor R.; Zubair A.F.
author_sort Mohamed Rijal M.L.; Mohamed Yusof A.; Mohamed Noor R.; Zubair A.F.
title A MINI REVIEW ON THE EFFECTS OF SURFACE ROUGHNESS IN MICROFIUIDICS CHANNELS
title_short A MINI REVIEW ON THE EFFECTS OF SURFACE ROUGHNESS IN MICROFIUIDICS CHANNELS
title_full A MINI REVIEW ON THE EFFECTS OF SURFACE ROUGHNESS IN MICROFIUIDICS CHANNELS
title_fullStr A MINI REVIEW ON THE EFFECTS OF SURFACE ROUGHNESS IN MICROFIUIDICS CHANNELS
title_full_unstemmed A MINI REVIEW ON THE EFFECTS OF SURFACE ROUGHNESS IN MICROFIUIDICS CHANNELS
title_sort A MINI REVIEW ON THE EFFECTS OF SURFACE ROUGHNESS IN MICROFIUIDICS CHANNELS
publishDate 2024
container_title Jurnal Mekanikal
container_volume 47
container_issue
doi_str_mv 10.11113/jm.v47.548
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85214706081&doi=10.11113%2fjm.v47.548&partnerID=40&md5=dc08c7bd21520c530acd345beae5287a
description The effects of surface roughness at low Reynolds numbers are more pronounced and critical in microchannels due to the relative size of roughness to channel dimensions. Surface roughness in microfluidic channels originates from the machining process during fabrication. This review examines how surface roughness, resulting from various manufacturing processes, influences the performance of microfluidic devices. Different patterns of surface roughness generated through techniques such as photolithography, etching, precision machining, and 3D printing are highlighted. These techniques yield distinct surface characteristics that affect critical microchannel properties, including fluid flow, pressure drop, and stress distribution. In addition to that, specific fabrication methods can minimize surface roughness, enhancing the performance of microchannels for applications in diagnostics, lab-on-a-chip systems, and small-scale heat exchangers are addressed. The review provides insights into selecting optimal fabrication techniques to achieve desired performance characteristics in microfluidic devices. © 2024 Penerbit UTM Press. All rights reserved.
publisher Penerbit UTM Press
issn 22893873
language English
format Article
accesstype
record_format scopus
collection Scopus
_version_ 1823296153086590976