Significance of Chemical Reactions and Entropy on Darcy-Forchheimer Flow of H2O and C2H6O2 Convening Magnetized Nanoparticles

The subject of discussion in this analysis is the time independent flow of electrically conducting nanofluid with entropy generation over a radially flexible disk. Considerations for magnetic fields, nonuniform heat generation, Darcy-Forchheimer porous space, dissipation, Ohmic heating and chemical...

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Main Authors: Saleem Nasir, Abdallah S. Berrouk, Asim Aamir, Taza Gul
Format: Article
Language:English
Published: Elsevier 2023-02-01
Series:International Journal of Thermofluids
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2666202722001288
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author Saleem Nasir
Abdallah S. Berrouk
Asim Aamir
Taza Gul
author_facet Saleem Nasir
Abdallah S. Berrouk
Asim Aamir
Taza Gul
author_sort Saleem Nasir
collection DOAJ
description The subject of discussion in this analysis is the time independent flow of electrically conducting nanofluid with entropy generation over a radially flexible disk. Considerations for magnetic fields, nonuniform heat generation, Darcy-Forchheimer porous space, dissipation, Ohmic heating and chemical reactions with activation energy are incorporated into the flow distribution. For a number of engineering and biomedical objectives, a mathematical model is introduced with the goal of accelerating the rate of energy transmission and improving the performance and efficiency of heat energy transportation. Titanium dioxide nanomaterial is consisting of two base fluid, water and ethylene glycol (EG), to synthesize the nanofluid (water/TiO2 and ethylene EG/TiO2). Additionally, the second thermodynamic law has been used to model entropy generation. This model takes into account the irreversibility of heat, fluid friction and joule dissipation processes. The problem has been modeled as a set of partial differential equations. That are streamlined into a system of ODEs by using similarity substitutions. The retrieved differential equations are then assessed utilizing computational approach HAM. For consistency and validity, the results are examined using numerical methodology (shooting method). Also, investigations are conducted into the effects of the radiation, magnetic factors, Brinkman number, volume fraction of nanoparticles on the entropy and Bejan number. Moreover, visually and computationally, the impacts of design variables on the movement, temperature and concentration profile, drag force, heat and mass flux rate are explored. The findings exhibit great comparability when examined to those of the articles that were previously published. The planned analysis demonstrates the significance of this nanofluids in industrial, pharmaceutical, chemical and nuclear plants as well as solar and other technologies.
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spelling doaj.art-4b144bd2c58d4f45a2496f28beb14ef42023-03-01T04:32:53ZengElsevierInternational Journal of Thermofluids2666-20272023-02-0117100265Significance of Chemical Reactions and Entropy on Darcy-Forchheimer Flow of H2O and C2H6O2 Convening Magnetized NanoparticlesSaleem Nasir0Abdallah S. Berrouk1Asim Aamir2Taza Gul3Mechanical Engineering Department, Khalifa University of Science and Technology, P.O. Box 127788, Abu Dhabi, United Arab Emirates; Center for Catalysis and Separation (CeCas), Khalifa University of Science and Technology, P.O. Box 127788, Abu Dhabi, United Arab Emirates; Corresponding author at: Mechanical Engineering Department, Khalifa University of Science and Technology, P.O. Box 127788, Abu Dhabi, United Arab Emirates.Mechanical Engineering Department, Khalifa University of Science and Technology, P.O. Box 127788, Abu Dhabi, United Arab Emirates; Center for Catalysis and Separation (CeCas), Khalifa University of Science and Technology, P.O. Box 127788, Abu Dhabi, United Arab EmiratesDepartment of Mechanical Engineering, Diponegoro University, Semarang, IndonesiaDepartment of Mathematics, City University of Science and Information Technology, Peshawar, PakistanThe subject of discussion in this analysis is the time independent flow of electrically conducting nanofluid with entropy generation over a radially flexible disk. Considerations for magnetic fields, nonuniform heat generation, Darcy-Forchheimer porous space, dissipation, Ohmic heating and chemical reactions with activation energy are incorporated into the flow distribution. For a number of engineering and biomedical objectives, a mathematical model is introduced with the goal of accelerating the rate of energy transmission and improving the performance and efficiency of heat energy transportation. Titanium dioxide nanomaterial is consisting of two base fluid, water and ethylene glycol (EG), to synthesize the nanofluid (water/TiO2 and ethylene EG/TiO2). Additionally, the second thermodynamic law has been used to model entropy generation. This model takes into account the irreversibility of heat, fluid friction and joule dissipation processes. The problem has been modeled as a set of partial differential equations. That are streamlined into a system of ODEs by using similarity substitutions. The retrieved differential equations are then assessed utilizing computational approach HAM. For consistency and validity, the results are examined using numerical methodology (shooting method). Also, investigations are conducted into the effects of the radiation, magnetic factors, Brinkman number, volume fraction of nanoparticles on the entropy and Bejan number. Moreover, visually and computationally, the impacts of design variables on the movement, temperature and concentration profile, drag force, heat and mass flux rate are explored. The findings exhibit great comparability when examined to those of the articles that were previously published. The planned analysis demonstrates the significance of this nanofluids in industrial, pharmaceutical, chemical and nuclear plants as well as solar and other technologies.http://www.sciencedirect.com/science/article/pii/S2666202722001288Darcy-ForchheimerEntropy generationHAM methodOhmic heatWater and ethylene glycol
spellingShingle Saleem Nasir
Abdallah S. Berrouk
Asim Aamir
Taza Gul
Significance of Chemical Reactions and Entropy on Darcy-Forchheimer Flow of H2O and C2H6O2 Convening Magnetized Nanoparticles
International Journal of Thermofluids
Darcy-Forchheimer
Entropy generation
HAM method
Ohmic heat
Water and ethylene glycol
title Significance of Chemical Reactions and Entropy on Darcy-Forchheimer Flow of H2O and C2H6O2 Convening Magnetized Nanoparticles
title_full Significance of Chemical Reactions and Entropy on Darcy-Forchheimer Flow of H2O and C2H6O2 Convening Magnetized Nanoparticles
title_fullStr Significance of Chemical Reactions and Entropy on Darcy-Forchheimer Flow of H2O and C2H6O2 Convening Magnetized Nanoparticles
title_full_unstemmed Significance of Chemical Reactions and Entropy on Darcy-Forchheimer Flow of H2O and C2H6O2 Convening Magnetized Nanoparticles
title_short Significance of Chemical Reactions and Entropy on Darcy-Forchheimer Flow of H2O and C2H6O2 Convening Magnetized Nanoparticles
title_sort significance of chemical reactions and entropy on darcy forchheimer flow of h2o and c2h6o2 convening magnetized nanoparticles
topic Darcy-Forchheimer
Entropy generation
HAM method
Ohmic heat
Water and ethylene glycol
url http://www.sciencedirect.com/science/article/pii/S2666202722001288
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