Analysis of Pressure and Velocity Variation in T-shaped Channel at Micron Level

Micro-electromechanical systems (MEMS) are microscopic devices based technology mainly involving the moving parts. Bio-MEM is a particular affiliate of MEMS technology in general. This paper studies and analyzes variations of pressure and velocity inside the T-shaped channel at micron level. We have...

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Main Authors: Faiz Ul-Hassan, Tariq Bashir, Shaista Jabeen
Format: Article
Language:English
Published: The University of Lahore 2020-06-01
Series:Pakistan Journal of Engineering & Technology
Subjects:
Online Access:https://sites2.uol.edu.pk/journals/index.php/pakjet/article/view/193
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author Faiz Ul-Hassan
Tariq Bashir
Shaista Jabeen
author_facet Faiz Ul-Hassan
Tariq Bashir
Shaista Jabeen
author_sort Faiz Ul-Hassan
collection DOAJ
description Micro-electromechanical systems (MEMS) are microscopic devices based technology mainly involving the moving parts. Bio-MEM is a particular affiliate of MEMS technology in general. This paper studies and analyzes variations of pressure and velocity inside the T-shaped channel at micron level. We have considered straight micro-channel for multi-field analysis among different types of micro-channels, i.e., sinusoidal, curved, straight, spiral and snake fang. The surface (inlet, outlet and walls) is defined for channel while water at 25C is to be assumed as working fluid. Moreover, parameters including diameter and length of channel are defined as well as meshing has been performed in 3-D formation. The fluid dynamics including pressure and velocity variation inside the channel are visualized using ANSYS CFX-solver.
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2664-2050
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spelling doaj.art-143a75c82ff1422d8a29c8663ee01c102022-12-21T19:04:37ZengThe University of LahorePakistan Journal of Engineering & Technology2664-20422664-20502020-06-013115Analysis of Pressure and Velocity Variation in T-shaped Channel at Micron LevelFaiz Ul-Hassan 0Tariq Bashir 1Shaista Jabeen2COMSATS University, Islamabad, PakistanCOMSATS University, Islamabad, PakistanCOMSATS University, Islamabad, PakistanMicro-electromechanical systems (MEMS) are microscopic devices based technology mainly involving the moving parts. Bio-MEM is a particular affiliate of MEMS technology in general. This paper studies and analyzes variations of pressure and velocity inside the T-shaped channel at micron level. We have considered straight micro-channel for multi-field analysis among different types of micro-channels, i.e., sinusoidal, curved, straight, spiral and snake fang. The surface (inlet, outlet and walls) is defined for channel while water at 25C is to be assumed as working fluid. Moreover, parameters including diameter and length of channel are defined as well as meshing has been performed in 3-D formation. The fluid dynamics including pressure and velocity variation inside the channel are visualized using ANSYS CFX-solver.https://sites2.uol.edu.pk/journals/index.php/pakjet/article/view/193ansysfluid flowmemsmicro-channel
spellingShingle Faiz Ul-Hassan
Tariq Bashir
Shaista Jabeen
Analysis of Pressure and Velocity Variation in T-shaped Channel at Micron Level
Pakistan Journal of Engineering & Technology
ansys
fluid flow
mems
micro-channel
title Analysis of Pressure and Velocity Variation in T-shaped Channel at Micron Level
title_full Analysis of Pressure and Velocity Variation in T-shaped Channel at Micron Level
title_fullStr Analysis of Pressure and Velocity Variation in T-shaped Channel at Micron Level
title_full_unstemmed Analysis of Pressure and Velocity Variation in T-shaped Channel at Micron Level
title_short Analysis of Pressure and Velocity Variation in T-shaped Channel at Micron Level
title_sort analysis of pressure and velocity variation in t shaped channel at micron level
topic ansys
fluid flow
mems
micro-channel
url https://sites2.uol.edu.pk/journals/index.php/pakjet/article/view/193
work_keys_str_mv AT faizulhassan analysisofpressureandvelocityvariationintshapedchannelatmicronlevel
AT tariqbashir analysisofpressureandvelocityvariationintshapedchannelatmicronlevel
AT shaistajabeen analysisofpressureandvelocityvariationintshapedchannelatmicronlevel