Numerical modelling for nanoparticle thermal migration with effects of shape of particles and magnetic field inside a porous enclosure

Computational modelling for nanoparticle migration inside a permeable space has been reported. Impacts of shape factor and radiation were included in the mathematical model. CVFEM was employed to analyse magnetic force impact. Impacts of magnetic radiative parameters, buoyancy forces and nanoparticl...

Full description

Bibliographic Details
Main Authors: Babazadeh, Houman, Zeeshan, A., Jacob, Kavikumar, Hajizadeh, Ahmad, Bhatti, M. M.
Format: Article
Language:English
Published: Springer 2020
Subjects:
Online Access:http://eprints.uthm.edu.my/6164/1/AJ%202020%20%28220%29.pdf
_version_ 1825710140313042944
author Babazadeh, Houman
Zeeshan, A.
Jacob, Kavikumar
Hajizadeh, Ahmad
Bhatti, M. M.
author_facet Babazadeh, Houman
Zeeshan, A.
Jacob, Kavikumar
Hajizadeh, Ahmad
Bhatti, M. M.
author_sort Babazadeh, Houman
collection UTHM
description Computational modelling for nanoparticle migration inside a permeable space has been reported. Impacts of shape factor and radiation were included in the mathematical model. CVFEM was employed to analyse magnetic force impact. Impacts of magnetic radiative parameters, buoyancy forces and nanoparticle shape on nanomaterial behaviour were demonstrated. Utilizing the Darcy model helps us to predict the behaviour of porous media. Outputs revealed higher convective mode can be achieved with augmenting buoyancy force while opposite outcome appears when magnetic field is imposed. Thermal plume vanishes with the rise of conductive mode which is gained as Hartmann increases.
first_indexed 2024-03-05T21:53:05Z
format Article
id uthm.eprints-6164
institution Universiti Tun Hussein Onn Malaysia
language English
last_indexed 2024-03-05T21:53:05Z
publishDate 2020
publisher Springer
record_format dspace
spelling uthm.eprints-61642022-01-27T03:23:47Z http://eprints.uthm.edu.my/6164/ Numerical modelling for nanoparticle thermal migration with effects of shape of particles and magnetic field inside a porous enclosure Babazadeh, Houman Zeeshan, A. Jacob, Kavikumar Hajizadeh, Ahmad Bhatti, M. M. TK Electrical engineering. Electronics Nuclear engineering Computational modelling for nanoparticle migration inside a permeable space has been reported. Impacts of shape factor and radiation were included in the mathematical model. CVFEM was employed to analyse magnetic force impact. Impacts of magnetic radiative parameters, buoyancy forces and nanoparticle shape on nanomaterial behaviour were demonstrated. Utilizing the Darcy model helps us to predict the behaviour of porous media. Outputs revealed higher convective mode can be achieved with augmenting buoyancy force while opposite outcome appears when magnetic field is imposed. Thermal plume vanishes with the rise of conductive mode which is gained as Hartmann increases. Springer 2020 Article PeerReviewed text en http://eprints.uthm.edu.my/6164/1/AJ%202020%20%28220%29.pdf Babazadeh, Houman and Zeeshan, A. and Jacob, Kavikumar and Hajizadeh, Ahmad and Bhatti, M. M. (2020) Numerical modelling for nanoparticle thermal migration with effects of shape of particles and magnetic field inside a porous enclosure. Iranian Journal of Science and Technology, Transactions of Mechanical Engineering, 45. pp. 801-811. ISSN 2228-6187 https://doi.org/10.1007/s40997-020-00354-9
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Babazadeh, Houman
Zeeshan, A.
Jacob, Kavikumar
Hajizadeh, Ahmad
Bhatti, M. M.
Numerical modelling for nanoparticle thermal migration with effects of shape of particles and magnetic field inside a porous enclosure
title Numerical modelling for nanoparticle thermal migration with effects of shape of particles and magnetic field inside a porous enclosure
title_full Numerical modelling for nanoparticle thermal migration with effects of shape of particles and magnetic field inside a porous enclosure
title_fullStr Numerical modelling for nanoparticle thermal migration with effects of shape of particles and magnetic field inside a porous enclosure
title_full_unstemmed Numerical modelling for nanoparticle thermal migration with effects of shape of particles and magnetic field inside a porous enclosure
title_short Numerical modelling for nanoparticle thermal migration with effects of shape of particles and magnetic field inside a porous enclosure
title_sort numerical modelling for nanoparticle thermal migration with effects of shape of particles and magnetic field inside a porous enclosure
topic TK Electrical engineering. Electronics Nuclear engineering
url http://eprints.uthm.edu.my/6164/1/AJ%202020%20%28220%29.pdf
work_keys_str_mv AT babazadehhouman numericalmodellingfornanoparticlethermalmigrationwitheffectsofshapeofparticlesandmagneticfieldinsideaporousenclosure
AT zeeshana numericalmodellingfornanoparticlethermalmigrationwitheffectsofshapeofparticlesandmagneticfieldinsideaporousenclosure
AT jacobkavikumar numericalmodellingfornanoparticlethermalmigrationwitheffectsofshapeofparticlesandmagneticfieldinsideaporousenclosure
AT hajizadehahmad numericalmodellingfornanoparticlethermalmigrationwitheffectsofshapeofparticlesandmagneticfieldinsideaporousenclosure
AT bhattimm numericalmodellingfornanoparticlethermalmigrationwitheffectsofshapeofparticlesandmagneticfieldinsideaporousenclosure