Evaluation of bioconvection for sinusoidally moving Jeffrey nanoparticles in view of temperature dependent thermal conductivity and Cattaneo-Christov heat diffusion model

With impressive thermal outcomes, the nanofluids present multidisciplinary applications in the cooling processes, thermal systems, extrusion processes, heat storage devices and many more. The aim of current research is to inspect thermal impact of Jeffrey fluid with tiny particles under the assumpti...

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Main Authors: Jawaher Alzahrani, Samaira Aziz, Maha Raoof Hamoudi, Shayma Hamza Sadon, Quynh Hoang Le, Sami Ullah Khan, Iftikhar Ahmad
Format: Article
Language:English
Published: Elsevier 2023-09-01
Series:Ain Shams Engineering Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2090447923000138
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author Jawaher Alzahrani
Samaira Aziz
Maha Raoof Hamoudi
Shayma Hamza Sadon
Quynh Hoang Le
Sami Ullah Khan
Iftikhar Ahmad
author_facet Jawaher Alzahrani
Samaira Aziz
Maha Raoof Hamoudi
Shayma Hamza Sadon
Quynh Hoang Le
Sami Ullah Khan
Iftikhar Ahmad
author_sort Jawaher Alzahrani
collection DOAJ
description With impressive thermal outcomes, the nanofluids present multidisciplinary applications in the cooling processes, thermal systems, extrusion processes, heat storage devices and many more. The aim of current research is to inspect thermal impact of Jeffrey fluid with tiny particles under the assumptions of variable thermal conductivity. The problem is supported with applications of chemical reaction, activation energy and magnetic force. For heat and mass transfer phenomenon, Cattaneo-Christov diffusion theories have been implemented. The formulated model is solved by using the homotopy analysis method (HAM) with excellent accuracy. The graphical analysis is performed with specified range of parameters like 0.2⩽H⩽0.8, 0.1⩽ϖ⩽1.7, 0.0⩽N⩽1.5, 0.0⩽Π⩽3.1, 0.3⩽γ⩽0.6, 0.6⩽Ψ⩽3.2, 0.5⩽Ω⩽2.0, 0.0⩽Σ⩽1.5, 0.2⩽Nt⩽1.7, 1.0⩽Pr⩽1.9, 0.5⩽Sc⩽1.4,0.3⩽β⩽1.5, 0.1⩽ε⩽1.0, 0.2⩽Nb⩽1.7. The assessment of flow parameters is graphically evaluated. It is observed that both velocity profiles periodically enhance for Deborah number while temperature, microorganisms and concentration distributions decelerate. The greater estimates of variable thermal conductivity and heat generation improve the temperature distribution while conflicting scenario ensures for thermic relaxation constant.
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spelling doaj.art-3d689829b0e94afe9282ce2e763cda7f2023-09-24T05:14:51ZengElsevierAin Shams Engineering Journal2090-44792023-09-01149102124Evaluation of bioconvection for sinusoidally moving Jeffrey nanoparticles in view of temperature dependent thermal conductivity and Cattaneo-Christov heat diffusion modelJawaher Alzahrani0Samaira Aziz1Maha Raoof Hamoudi2Shayma Hamza Sadon3Quynh Hoang Le4Sami Ullah Khan5Iftikhar Ahmad6Department of Mathematics, College of Education, Majmmah University, Al-Majmaah 11952, Saudi ArabiaDepartment of Mathematics, University of Azad Jammu & Kashmir Muzaffarabad, 13100, PakistanDepartment of Natural Resources Engineering and Management, University of Kurdistan Hewler, Erbil, IraqDepartment of Petroleum & Mining Engineering, The Faculty of Engineering, Tishk International University, Erbil, Kurdistan Region, IraqInstitute of Research and Development, Duy Tan University, Da Nang, Vietnam; School of Medicine and Pharmacy, Duy Tan University, Da Nang, Vietnam; Corresponding author.Department of Mathematics, COMSATS University Islamabad, Sahiwal 57000, PakistanDepartment of Mathematics, University of Azad Jammu & Kashmir Muzaffarabad, 13100, PakistanWith impressive thermal outcomes, the nanofluids present multidisciplinary applications in the cooling processes, thermal systems, extrusion processes, heat storage devices and many more. The aim of current research is to inspect thermal impact of Jeffrey fluid with tiny particles under the assumptions of variable thermal conductivity. The problem is supported with applications of chemical reaction, activation energy and magnetic force. For heat and mass transfer phenomenon, Cattaneo-Christov diffusion theories have been implemented. The formulated model is solved by using the homotopy analysis method (HAM) with excellent accuracy. The graphical analysis is performed with specified range of parameters like 0.2⩽H⩽0.8, 0.1⩽ϖ⩽1.7, 0.0⩽N⩽1.5, 0.0⩽Π⩽3.1, 0.3⩽γ⩽0.6, 0.6⩽Ψ⩽3.2, 0.5⩽Ω⩽2.0, 0.0⩽Σ⩽1.5, 0.2⩽Nt⩽1.7, 1.0⩽Pr⩽1.9, 0.5⩽Sc⩽1.4,0.3⩽β⩽1.5, 0.1⩽ε⩽1.0, 0.2⩽Nb⩽1.7. The assessment of flow parameters is graphically evaluated. It is observed that both velocity profiles periodically enhance for Deborah number while temperature, microorganisms and concentration distributions decelerate. The greater estimates of variable thermal conductivity and heat generation improve the temperature distribution while conflicting scenario ensures for thermic relaxation constant.http://www.sciencedirect.com/science/article/pii/S2090447923000138NanofluidsBioconvectionJeffrey fluidVariable thermal conductivityCattaneo-Christov double diffusionBi-directional accelerated surface
spellingShingle Jawaher Alzahrani
Samaira Aziz
Maha Raoof Hamoudi
Shayma Hamza Sadon
Quynh Hoang Le
Sami Ullah Khan
Iftikhar Ahmad
Evaluation of bioconvection for sinusoidally moving Jeffrey nanoparticles in view of temperature dependent thermal conductivity and Cattaneo-Christov heat diffusion model
Ain Shams Engineering Journal
Nanofluids
Bioconvection
Jeffrey fluid
Variable thermal conductivity
Cattaneo-Christov double diffusion
Bi-directional accelerated surface
title Evaluation of bioconvection for sinusoidally moving Jeffrey nanoparticles in view of temperature dependent thermal conductivity and Cattaneo-Christov heat diffusion model
title_full Evaluation of bioconvection for sinusoidally moving Jeffrey nanoparticles in view of temperature dependent thermal conductivity and Cattaneo-Christov heat diffusion model
title_fullStr Evaluation of bioconvection for sinusoidally moving Jeffrey nanoparticles in view of temperature dependent thermal conductivity and Cattaneo-Christov heat diffusion model
title_full_unstemmed Evaluation of bioconvection for sinusoidally moving Jeffrey nanoparticles in view of temperature dependent thermal conductivity and Cattaneo-Christov heat diffusion model
title_short Evaluation of bioconvection for sinusoidally moving Jeffrey nanoparticles in view of temperature dependent thermal conductivity and Cattaneo-Christov heat diffusion model
title_sort evaluation of bioconvection for sinusoidally moving jeffrey nanoparticles in view of temperature dependent thermal conductivity and cattaneo christov heat diffusion model
topic Nanofluids
Bioconvection
Jeffrey fluid
Variable thermal conductivity
Cattaneo-Christov double diffusion
Bi-directional accelerated surface
url http://www.sciencedirect.com/science/article/pii/S2090447923000138
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