Hybrid Nanofluid Flow over a Shrinking Darcy-Forchheimer Porous Medium with Shape Factor and Solar Radiation: A Stability Analysis

This research aimed to develop a numerical solution to analyze the effects of solar radiation and nanoparticle shape factors on the flow of a hybrid nanofluid past a shrinking Darcy-Forchheimer porous medium. The base fluid chosen for this study is water (H2O), and the hybrid nanofluid consists of n...

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Main Authors: Shahirah, Abu Bakar, Nurul Syuhada, Ismail, Norihan, Md. Arifin
Format: Article
Language:English
Published: Semarak Ilmu Publishing 2024
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Online Access:http://ir.unimas.my/id/eprint/45385/1/Publication%204%282024%29.pdf
http://ir.unimas.my/id/eprint/45385/
https://semarakilmu.com.my/journals/index.php/CFD_Letters/article/view/3698
https://doi.org/10.37934/cfdl.16.11.6081
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spelling my.unimas.ir.453852024-07-26T06:57:22Z http://ir.unimas.my/id/eprint/45385/ Hybrid Nanofluid Flow over a Shrinking Darcy-Forchheimer Porous Medium with Shape Factor and Solar Radiation: A Stability Analysis Shahirah, Abu Bakar Nurul Syuhada, Ismail Norihan, Md. Arifin QA Mathematics This research aimed to develop a numerical solution to analyze the effects of solar radiation and nanoparticle shape factors on the flow of a hybrid nanofluid past a shrinking Darcy-Forchheimer porous medium. The base fluid chosen for this study is water (H2O), and the hybrid nanofluid consists of nanoparticles of silver (Ag) and titanium dioxide (TiO2) in four different shapes: bricks, cylinders, platelets, and blades. To account for solar radiation, the energy model incorporated a radiative heat flux, while the momentum problem considers the influence of a magnetic field. The application of an appropriate similarity transformation method converts the partial differential equations (PDEs) model into a system of nonlinear ordinary differential equations (ODEs). The mathematical model is solved using the shooting technique method and the bvp4c solver. The obtained results, along with the effects of the nanoparticle shape factor, solar radiation parameter, shrinking parameter, Darcy�Forchheimer number, and nanofluid volume fraction, are visually presented through figures and tables. It is worth noting that, in our numerical results, we observed the presence of dual solutions when λ < 0. Our findings indicate that the thermal transmittance increases with an increase in the nanoparticle shape factor and solar radiative parameter. Additionally, we observed an escalation in the velocity distribution in relation to the shrinking parameter and nanofluid volume fraction. Before reaching the two solutions, a flow stability analysis revealed that the first branch appears to be the most stable. Overall, these findings provide valuable insights into the behaviour of hybrid nanofluid flow in the presence of solar radiation and porous media. Semarak Ilmu Publishing 2024 Article PeerReviewed text en http://ir.unimas.my/id/eprint/45385/1/Publication%204%282024%29.pdf Shahirah, Abu Bakar and Nurul Syuhada, Ismail and Norihan, Md. Arifin (2024) Hybrid Nanofluid Flow over a Shrinking Darcy-Forchheimer Porous Medium with Shape Factor and Solar Radiation: A Stability Analysis. CFD Letters, 16 (11). pp. 60-81. ISSN 2180 - 1363 https://semarakilmu.com.my/journals/index.php/CFD_Letters/article/view/3698 https://doi.org/10.37934/cfdl.16.11.6081
institution Universiti Malaysia Sarawak
building Centre for Academic Information Services (CAIS)
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaysia Sarawak
content_source UNIMAS Institutional Repository
url_provider http://ir.unimas.my/
language English
topic QA Mathematics
spellingShingle QA Mathematics
Shahirah, Abu Bakar
Nurul Syuhada, Ismail
Norihan, Md. Arifin
Hybrid Nanofluid Flow over a Shrinking Darcy-Forchheimer Porous Medium with Shape Factor and Solar Radiation: A Stability Analysis
description This research aimed to develop a numerical solution to analyze the effects of solar radiation and nanoparticle shape factors on the flow of a hybrid nanofluid past a shrinking Darcy-Forchheimer porous medium. The base fluid chosen for this study is water (H2O), and the hybrid nanofluid consists of nanoparticles of silver (Ag) and titanium dioxide (TiO2) in four different shapes: bricks, cylinders, platelets, and blades. To account for solar radiation, the energy model incorporated a radiative heat flux, while the momentum problem considers the influence of a magnetic field. The application of an appropriate similarity transformation method converts the partial differential equations (PDEs) model into a system of nonlinear ordinary differential equations (ODEs). The mathematical model is solved using the shooting technique method and the bvp4c solver. The obtained results, along with the effects of the nanoparticle shape factor, solar radiation parameter, shrinking parameter, Darcy�Forchheimer number, and nanofluid volume fraction, are visually presented through figures and tables. It is worth noting that, in our numerical results, we observed the presence of dual solutions when λ < 0. Our findings indicate that the thermal transmittance increases with an increase in the nanoparticle shape factor and solar radiative parameter. Additionally, we observed an escalation in the velocity distribution in relation to the shrinking parameter and nanofluid volume fraction. Before reaching the two solutions, a flow stability analysis revealed that the first branch appears to be the most stable. Overall, these findings provide valuable insights into the behaviour of hybrid nanofluid flow in the presence of solar radiation and porous media.
format Article
author Shahirah, Abu Bakar
Nurul Syuhada, Ismail
Norihan, Md. Arifin
author_facet Shahirah, Abu Bakar
Nurul Syuhada, Ismail
Norihan, Md. Arifin
author_sort Shahirah, Abu Bakar
title Hybrid Nanofluid Flow over a Shrinking Darcy-Forchheimer Porous Medium with Shape Factor and Solar Radiation: A Stability Analysis
title_short Hybrid Nanofluid Flow over a Shrinking Darcy-Forchheimer Porous Medium with Shape Factor and Solar Radiation: A Stability Analysis
title_full Hybrid Nanofluid Flow over a Shrinking Darcy-Forchheimer Porous Medium with Shape Factor and Solar Radiation: A Stability Analysis
title_fullStr Hybrid Nanofluid Flow over a Shrinking Darcy-Forchheimer Porous Medium with Shape Factor and Solar Radiation: A Stability Analysis
title_full_unstemmed Hybrid Nanofluid Flow over a Shrinking Darcy-Forchheimer Porous Medium with Shape Factor and Solar Radiation: A Stability Analysis
title_sort hybrid nanofluid flow over a shrinking darcy-forchheimer porous medium with shape factor and solar radiation: a stability analysis
publisher Semarak Ilmu Publishing
publishDate 2024
url http://ir.unimas.my/id/eprint/45385/1/Publication%204%282024%29.pdf
http://ir.unimas.my/id/eprint/45385/
https://semarakilmu.com.my/journals/index.php/CFD_Letters/article/view/3698
https://doi.org/10.37934/cfdl.16.11.6081
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score 13.209306