Thermogravitational Convection in a Controlled Rotating Darcy-Brinkman Nanofluids Layer Saturated in an Anisotropic Porous Medium Subjected to Internal Heat Source

Thermogravitational convection in a controlled rotating Darcy-Brinkman nanofluids layer saturated in an anisotropic porous medium heated from below is investigated. The presence of a uniformly distributed internal heat source and considers the Brinkman model for different boundary conditions: rigid-...

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Published in:Journal of Advanced Research in Numerical Heat Transfer
Main Author: Khalid I.K.; Mohd Mokhtar N.F.; Zainal Abidin N.H.
Format: Article
Language:English
Published: Penerbit Akademia Baru 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85186895371&doi=10.37934%2farnht.14.1.7090&partnerID=40&md5=9bb979ace9b916cddf4d8a1345bc616e
id 2-s2.0-85186895371
spelling 2-s2.0-85186895371
Khalid I.K.; Mohd Mokhtar N.F.; Zainal Abidin N.H.
Thermogravitational Convection in a Controlled Rotating Darcy-Brinkman Nanofluids Layer Saturated in an Anisotropic Porous Medium Subjected to Internal Heat Source
2023
Journal of Advanced Research in Numerical Heat Transfer
14
1
10.37934/arnht.14.1.7090
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85186895371&doi=10.37934%2farnht.14.1.7090&partnerID=40&md5=9bb979ace9b916cddf4d8a1345bc616e
Thermogravitational convection in a controlled rotating Darcy-Brinkman nanofluids layer saturated in an anisotropic porous medium heated from below is investigated. The presence of a uniformly distributed internal heat source and considers the Brinkman model for different boundary conditions: rigid-rigid, free-free, and lower-rigid and upper-free are considered. The effect of a control strategy involving sensors located at the top plate and actuators positioned at the bottom plate of the nanofluids layer is analysed. Linear stability analysis based on normal mode technique is employed. The resulting eigenvalue problem is solved numerically using the Galerkin method implemented with Maple software. The model used for the nanofluids associates with the mechanisms of Brownian motion and thermophoresis. The influences of the internal heat source strength, mechanical anisotropy parameter, modified diffusivity ratio, nanoparticles concentration Darcy-Rayleigh number and nanofluids Lewis number are found to advance the onset of convection. Conversely, the Darcy number, thermal anisotropy parameter, porosity, rotation, and controller effects are observed to slow down the process of convective instability. © 2023, Penerbit Akademia Baru. All rights reserved.
Penerbit Akademia Baru
27350142
English
Article
All Open Access; Hybrid Gold Open Access
author Khalid I.K.; Mohd Mokhtar N.F.; Zainal Abidin N.H.
spellingShingle Khalid I.K.; Mohd Mokhtar N.F.; Zainal Abidin N.H.
Thermogravitational Convection in a Controlled Rotating Darcy-Brinkman Nanofluids Layer Saturated in an Anisotropic Porous Medium Subjected to Internal Heat Source
author_facet Khalid I.K.; Mohd Mokhtar N.F.; Zainal Abidin N.H.
author_sort Khalid I.K.; Mohd Mokhtar N.F.; Zainal Abidin N.H.
title Thermogravitational Convection in a Controlled Rotating Darcy-Brinkman Nanofluids Layer Saturated in an Anisotropic Porous Medium Subjected to Internal Heat Source
title_short Thermogravitational Convection in a Controlled Rotating Darcy-Brinkman Nanofluids Layer Saturated in an Anisotropic Porous Medium Subjected to Internal Heat Source
title_full Thermogravitational Convection in a Controlled Rotating Darcy-Brinkman Nanofluids Layer Saturated in an Anisotropic Porous Medium Subjected to Internal Heat Source
title_fullStr Thermogravitational Convection in a Controlled Rotating Darcy-Brinkman Nanofluids Layer Saturated in an Anisotropic Porous Medium Subjected to Internal Heat Source
title_full_unstemmed Thermogravitational Convection in a Controlled Rotating Darcy-Brinkman Nanofluids Layer Saturated in an Anisotropic Porous Medium Subjected to Internal Heat Source
title_sort Thermogravitational Convection in a Controlled Rotating Darcy-Brinkman Nanofluids Layer Saturated in an Anisotropic Porous Medium Subjected to Internal Heat Source
publishDate 2023
container_title Journal of Advanced Research in Numerical Heat Transfer
container_volume 14
container_issue 1
doi_str_mv 10.37934/arnht.14.1.7090
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85186895371&doi=10.37934%2farnht.14.1.7090&partnerID=40&md5=9bb979ace9b916cddf4d8a1345bc616e
description Thermogravitational convection in a controlled rotating Darcy-Brinkman nanofluids layer saturated in an anisotropic porous medium heated from below is investigated. The presence of a uniformly distributed internal heat source and considers the Brinkman model for different boundary conditions: rigid-rigid, free-free, and lower-rigid and upper-free are considered. The effect of a control strategy involving sensors located at the top plate and actuators positioned at the bottom plate of the nanofluids layer is analysed. Linear stability analysis based on normal mode technique is employed. The resulting eigenvalue problem is solved numerically using the Galerkin method implemented with Maple software. The model used for the nanofluids associates with the mechanisms of Brownian motion and thermophoresis. The influences of the internal heat source strength, mechanical anisotropy parameter, modified diffusivity ratio, nanoparticles concentration Darcy-Rayleigh number and nanofluids Lewis number are found to advance the onset of convection. Conversely, the Darcy number, thermal anisotropy parameter, porosity, rotation, and controller effects are observed to slow down the process of convective instability. © 2023, Penerbit Akademia Baru. All rights reserved.
publisher Penerbit Akademia Baru
issn 27350142
language English
format Article
accesstype All Open Access; Hybrid Gold Open Access
record_format scopus
collection Scopus
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