Concentration and Thermal Analysis of immiscible Tangent hyperbolic fluid with distinct viscosity through horizontal asymmetric channel: Theoretical and Observational study

This study examines cilia induced Tangent hyperbolic fluid flow with distinct viscosity, density in addition to thermal conductivity through horizontal asymmetric channel in two adjacent layers. The impact of mass and heat transfer in two adjacent layers with continuity at the interface is considere...

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Main Authors: S. Shaheen, H. Huang, M.B. Arain, A. Al-Zubaidi, Elsayed M. Tag-eldin
Format: Article
Language:English
Published: Elsevier 2023-10-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X23006925
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author S. Shaheen
H. Huang
M.B. Arain
A. Al-Zubaidi
Elsayed M. Tag-eldin
author_facet S. Shaheen
H. Huang
M.B. Arain
A. Al-Zubaidi
Elsayed M. Tag-eldin
author_sort S. Shaheen
collection DOAJ
description This study examines cilia induced Tangent hyperbolic fluid flow with distinct viscosity, density in addition to thermal conductivity through horizontal asymmetric channel in two adjacent layers. The impact of mass and heat transfer in two adjacent layers with continuity at the interface is considered. The governing equations for double-layer fluid flow was modelled and simplified via well-known approximation long wavelength and small Reynolds number. The subsequent equations with boundary conditions provide exact solution for the velocity profile, temperature field and concentration distribution in both layers. The outcomes of occurring parameters on temperature, velocity and concentration field are explained graphically. The major findings show that velocity field and temperature field are extreme in internal fluid layer and concentration distribution is highest at external fluid layers. In both the layers by rising viscosities, thermal conductivities, fluid parameters and temperature profile increases. Potential applications for the current work include mucus clearance from respiratory tract, microfluidics, oesophageal transport, bio fluid mechanism and other fields of physiology.
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spelling doaj.art-c3719f7b95f445e1bf94cc880c5b332a2023-09-30T04:54:34ZengElsevierCase Studies in Thermal Engineering2214-157X2023-10-0150103386Concentration and Thermal Analysis of immiscible Tangent hyperbolic fluid with distinct viscosity through horizontal asymmetric channel: Theoretical and Observational studyS. Shaheen0H. Huang1M.B. Arain2A. Al-Zubaidi3Elsayed M. Tag-eldin4Laboratory of Aerospace Entry Descent and Landing Technology, College of Astronautics, Nanjing University of Aeronautics and Astronautics, Nanjing, 211106, People's Republic of ChinaLaboratory of Aerospace Entry Descent and Landing Technology, College of Astronautics, Nanjing University of Aeronautics and Astronautics, Nanjing, 211106, People's Republic of China; Corresponding author.State Key Laboratory of Mechanics and Control of Mechanical Structures, Nanjing University of Aeronautics and Astronautics, Nanjing, 210016, People's Republic of China; Corresponding author.Department of Mathematics, College of Science, King Khalid University, Abha, 61413, Saudi ArabiaFaculty of Engineering, Center of Research, Future University in Egypt, New Cairo, 11835, EgyptThis study examines cilia induced Tangent hyperbolic fluid flow with distinct viscosity, density in addition to thermal conductivity through horizontal asymmetric channel in two adjacent layers. The impact of mass and heat transfer in two adjacent layers with continuity at the interface is considered. The governing equations for double-layer fluid flow was modelled and simplified via well-known approximation long wavelength and small Reynolds number. The subsequent equations with boundary conditions provide exact solution for the velocity profile, temperature field and concentration distribution in both layers. The outcomes of occurring parameters on temperature, velocity and concentration field are explained graphically. The major findings show that velocity field and temperature field are extreme in internal fluid layer and concentration distribution is highest at external fluid layers. In both the layers by rising viscosities, thermal conductivities, fluid parameters and temperature profile increases. Potential applications for the current work include mucus clearance from respiratory tract, microfluidics, oesophageal transport, bio fluid mechanism and other fields of physiology.http://www.sciencedirect.com/science/article/pii/S2214157X23006925Cilia induced flowTangent hyperbolic fluid modelExact solutionHeat transferPeripheral layerMetachronal wave
spellingShingle S. Shaheen
H. Huang
M.B. Arain
A. Al-Zubaidi
Elsayed M. Tag-eldin
Concentration and Thermal Analysis of immiscible Tangent hyperbolic fluid with distinct viscosity through horizontal asymmetric channel: Theoretical and Observational study
Case Studies in Thermal Engineering
Cilia induced flow
Tangent hyperbolic fluid model
Exact solution
Heat transfer
Peripheral layer
Metachronal wave
title Concentration and Thermal Analysis of immiscible Tangent hyperbolic fluid with distinct viscosity through horizontal asymmetric channel: Theoretical and Observational study
title_full Concentration and Thermal Analysis of immiscible Tangent hyperbolic fluid with distinct viscosity through horizontal asymmetric channel: Theoretical and Observational study
title_fullStr Concentration and Thermal Analysis of immiscible Tangent hyperbolic fluid with distinct viscosity through horizontal asymmetric channel: Theoretical and Observational study
title_full_unstemmed Concentration and Thermal Analysis of immiscible Tangent hyperbolic fluid with distinct viscosity through horizontal asymmetric channel: Theoretical and Observational study
title_short Concentration and Thermal Analysis of immiscible Tangent hyperbolic fluid with distinct viscosity through horizontal asymmetric channel: Theoretical and Observational study
title_sort concentration and thermal analysis of immiscible tangent hyperbolic fluid with distinct viscosity through horizontal asymmetric channel theoretical and observational study
topic Cilia induced flow
Tangent hyperbolic fluid model
Exact solution
Heat transfer
Peripheral layer
Metachronal wave
url http://www.sciencedirect.com/science/article/pii/S2214157X23006925
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AT hhuang concentrationandthermalanalysisofimmiscibletangenthyperbolicfluidwithdistinctviscositythroughhorizontalasymmetricchanneltheoreticalandobservationalstudy
AT mbarain concentrationandthermalanalysisofimmiscibletangenthyperbolicfluidwithdistinctviscositythroughhorizontalasymmetricchanneltheoreticalandobservationalstudy
AT aalzubaidi concentrationandthermalanalysisofimmiscibletangenthyperbolicfluidwithdistinctviscositythroughhorizontalasymmetricchanneltheoreticalandobservationalstudy
AT elsayedmtageldin concentrationandthermalanalysisofimmiscibletangenthyperbolicfluidwithdistinctviscositythroughhorizontalasymmetricchanneltheoreticalandobservationalstudy