Influences of Gyrotactic Microorganisms and Nonlinear Mixed Bio-Convection on Hybrid Nanofluid Flow over an Inclined Extending Plate with Porous Effects

This study investigates nonlinear mixed convective hybrid nanofluid flow over a spongy, inclined stretching surface. There are numerous applications of nonlinear convection, and it is especially pivotal in predicting weather patterns accurately and optimizing heat transfer for efficient electronic a...

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Main Authors: Arshad Khan, Muhammad Jawad, Farhat Nasir, Ishtiaq Ali
Format: Article
Language:English
Published: Semnan University 2024-06-01
Series:Journal of Heat and Mass Transfer Research
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Online Access:https://jhmtr.semnan.ac.ir/article_8626_e24feecfe5d9720c83f89d142b7738ef.pdf
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author Arshad Khan
Muhammad Jawad
Farhat Nasir
Ishtiaq Ali
author_facet Arshad Khan
Muhammad Jawad
Farhat Nasir
Ishtiaq Ali
author_sort Arshad Khan
collection DOAJ
description This study investigates nonlinear mixed convective hybrid nanofluid flow over a spongy, inclined stretching surface. There are numerous applications of nonlinear convection, and it is especially pivotal in predicting weather patterns accurately and optimizing heat transfer for efficient electronic and industrial cooling systems. The flow is also influenced by the porous behavior of the plate and the presence of the microorganisms. The main emphasis is given to analyzing the influence of thermal and mass Grashof numbers for their nonlinear nature upon the flow system. The equations that administered the flow system are converted to dimensionless notations by using suitable variables. The homotopy analysis approach has been used for the solution of modeled equations. It has been perceived in this work that fluid velocity declines with the upsurge in inertial factor, permeability parameter, volume fraction, and magnetic factor. Thermal profiles upsurge with growth in Brownian, thermophoresis factors, Eckert number, and weaken with Prandtl number. Concentration of fluid increases with progression in the thermophoresis factor and drops with greater values of Schmidt number and Brownian factor. Density number has declined with growth in Peclet, bioconvective Lewis numbers, and inclination angle. Over the range  the heat transfer rate jumps from 1.8057 to 2.1332 in case of , from 1.8057 to 2.1968 in case of  and it jumps from 1.8057 2.3177 in case of  that shows maximum heat transfer rate in case of variations in Eckert number.
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publishDate 2024-06-01
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spelling doaj-art-e19d4ac629564e8499254a597b5978be2025-08-20T01:58:19ZengSemnan UniversityJournal of Heat and Mass Transfer Research2345-508X2383-30682024-06-0111115116610.22075/jhmtr.2024.32014.14858626Influences of Gyrotactic Microorganisms and Nonlinear Mixed Bio-Convection on Hybrid Nanofluid Flow over an Inclined Extending Plate with Porous EffectsArshad Khan0Muhammad Jawad1Farhat Nasir2Ishtiaq Ali3College of Aeronautical Engineering, National University of Sciences and Technology (NUST), Sector H-12, Islamabad, 44000, PakistanCenter for Numerical Simulation Software in Engineering and Sciences, College of Mechanics and Materials, Hohai University, Nanjing, 211100, PR ChinaCollege of Aeronautical Engineering, National University of Sciences and Technology (NUST), Sector H-12, Islamabad, 44000, PakistanDepartment of Mathematics and Statistics, College of Science, King Faisal University, Al-Ahsa, 31982, Saudi ArabiaThis study investigates nonlinear mixed convective hybrid nanofluid flow over a spongy, inclined stretching surface. There are numerous applications of nonlinear convection, and it is especially pivotal in predicting weather patterns accurately and optimizing heat transfer for efficient electronic and industrial cooling systems. The flow is also influenced by the porous behavior of the plate and the presence of the microorganisms. The main emphasis is given to analyzing the influence of thermal and mass Grashof numbers for their nonlinear nature upon the flow system. The equations that administered the flow system are converted to dimensionless notations by using suitable variables. The homotopy analysis approach has been used for the solution of modeled equations. It has been perceived in this work that fluid velocity declines with the upsurge in inertial factor, permeability parameter, volume fraction, and magnetic factor. Thermal profiles upsurge with growth in Brownian, thermophoresis factors, Eckert number, and weaken with Prandtl number. Concentration of fluid increases with progression in the thermophoresis factor and drops with greater values of Schmidt number and Brownian factor. Density number has declined with growth in Peclet, bioconvective Lewis numbers, and inclination angle. Over the range  the heat transfer rate jumps from 1.8057 to 2.1332 in case of , from 1.8057 to 2.1968 in case of  and it jumps from 1.8057 2.3177 in case of  that shows maximum heat transfer rate in case of variations in Eckert number.https://jhmtr.semnan.ac.ir/article_8626_e24feecfe5d9720c83f89d142b7738ef.pdfnonlinear mixed convectionhybrid nanofluidinclined platestretching plategyrotactic microorganisms
spellingShingle Arshad Khan
Muhammad Jawad
Farhat Nasir
Ishtiaq Ali
Influences of Gyrotactic Microorganisms and Nonlinear Mixed Bio-Convection on Hybrid Nanofluid Flow over an Inclined Extending Plate with Porous Effects
Journal of Heat and Mass Transfer Research
nonlinear mixed convection
hybrid nanofluid
inclined plate
stretching plate
gyrotactic microorganisms
title Influences of Gyrotactic Microorganisms and Nonlinear Mixed Bio-Convection on Hybrid Nanofluid Flow over an Inclined Extending Plate with Porous Effects
title_full Influences of Gyrotactic Microorganisms and Nonlinear Mixed Bio-Convection on Hybrid Nanofluid Flow over an Inclined Extending Plate with Porous Effects
title_fullStr Influences of Gyrotactic Microorganisms and Nonlinear Mixed Bio-Convection on Hybrid Nanofluid Flow over an Inclined Extending Plate with Porous Effects
title_full_unstemmed Influences of Gyrotactic Microorganisms and Nonlinear Mixed Bio-Convection on Hybrid Nanofluid Flow over an Inclined Extending Plate with Porous Effects
title_short Influences of Gyrotactic Microorganisms and Nonlinear Mixed Bio-Convection on Hybrid Nanofluid Flow over an Inclined Extending Plate with Porous Effects
title_sort influences of gyrotactic microorganisms and nonlinear mixed bio convection on hybrid nanofluid flow over an inclined extending plate with porous effects
topic nonlinear mixed convection
hybrid nanofluid
inclined plate
stretching plate
gyrotactic microorganisms
url https://jhmtr.semnan.ac.ir/article_8626_e24feecfe5d9720c83f89d142b7738ef.pdf
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AT farhatnasir influencesofgyrotacticmicroorganismsandnonlinearmixedbioconvectiononhybridnanofluidflowoveraninclinedextendingplatewithporouseffects
AT ishtiaqali influencesofgyrotacticmicroorganismsandnonlinearmixedbioconvectiononhybridnanofluidflowoveraninclinedextendingplatewithporouseffects