Numerical study for bio-convection flow of tangent hyperbolic nanofluid over a Riga plate with activation energy

A mathematical model for the two-dimensional flow of tangent hyperbolic nanofluid over a Riga plate in the existence of gyrotactic microorganisms is discussed. For velocity, temperature, and concentration, Wu's velocity slip, thermal convection, and zero nanoparticle flux conditions are imposed...

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Autores principales: Hassan Waqas, Anosha Kafait, Taseer Muhammad, Umar Farooq
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Lenguaje:EN
Publicado: Elsevier 2022
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Acceso en línea:https://doaj.org/article/21d3803e7bf14b0c91a22303fd60dcb8
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spelling oai:doaj.org-article:21d3803e7bf14b0c91a22303fd60dcb82021-12-02T04:59:33ZNumerical study for bio-convection flow of tangent hyperbolic nanofluid over a Riga plate with activation energy1110-016810.1016/j.aej.2021.06.068https://doaj.org/article/21d3803e7bf14b0c91a22303fd60dcb82022-02-01T00:00:00Zhttp://www.sciencedirect.com/science/article/pii/S1110016821004403https://doaj.org/toc/1110-0168A mathematical model for the two-dimensional flow of tangent hyperbolic nanofluid over a Riga plate in the existence of gyrotactic microorganisms is discussed. For velocity, temperature, and concentration, Wu's velocity slip, thermal convection, and zero nanoparticle flux conditions are imposed. Nanofluids gained tremendous notability due to their wide spread industrial, technological, and chemical applications. A set of pertinent transformations has been suggested to transform the governing non-linear partial differential equations into a system of non-linear ordinary differential equations (ODEs). The methodology involves solving the dimensionless equations using the bvp4c technique for computing the numerical solution. Additionally, the numerical results are constructed for these obtained equations by using the bvp4c tool in MATLAB. The effects of numerous prominent parameters on concentration, velocity, temperature, and motile microorganism profiles are executed graphically. From the obtained results it is noted that the velocity of the tangent hyperbolic fluid is boosted up by growing the variations of mixed convection parameters. The temperature of nanofluid behavior is reduced for a larger Prandtl number. Concentration of nano particles is enhanced by growing activation energy parameters. Microorganisms profile is improved with first-order velocity slip parameter while decaying for bio-convection Lewis number.Hassan WaqasAnosha KafaitTaseer MuhammadUmar FarooqElsevierarticleTangent hyperbolic fluidGyrotactic microorganismsNanoparticlesRiga plateNumerical solutionEngineering (General). Civil engineering (General)TA1-2040ENAlexandria Engineering Journal, Vol 61, Iss 2, Pp 1803-1814 (2022)
institution DOAJ
collection DOAJ
language EN
topic Tangent hyperbolic fluid
Gyrotactic microorganisms
Nanoparticles
Riga plate
Numerical solution
Engineering (General). Civil engineering (General)
TA1-2040
spellingShingle Tangent hyperbolic fluid
Gyrotactic microorganisms
Nanoparticles
Riga plate
Numerical solution
Engineering (General). Civil engineering (General)
TA1-2040
Hassan Waqas
Anosha Kafait
Taseer Muhammad
Umar Farooq
Numerical study for bio-convection flow of tangent hyperbolic nanofluid over a Riga plate with activation energy
description A mathematical model for the two-dimensional flow of tangent hyperbolic nanofluid over a Riga plate in the existence of gyrotactic microorganisms is discussed. For velocity, temperature, and concentration, Wu's velocity slip, thermal convection, and zero nanoparticle flux conditions are imposed. Nanofluids gained tremendous notability due to their wide spread industrial, technological, and chemical applications. A set of pertinent transformations has been suggested to transform the governing non-linear partial differential equations into a system of non-linear ordinary differential equations (ODEs). The methodology involves solving the dimensionless equations using the bvp4c technique for computing the numerical solution. Additionally, the numerical results are constructed for these obtained equations by using the bvp4c tool in MATLAB. The effects of numerous prominent parameters on concentration, velocity, temperature, and motile microorganism profiles are executed graphically. From the obtained results it is noted that the velocity of the tangent hyperbolic fluid is boosted up by growing the variations of mixed convection parameters. The temperature of nanofluid behavior is reduced for a larger Prandtl number. Concentration of nano particles is enhanced by growing activation energy parameters. Microorganisms profile is improved with first-order velocity slip parameter while decaying for bio-convection Lewis number.
format article
author Hassan Waqas
Anosha Kafait
Taseer Muhammad
Umar Farooq
author_facet Hassan Waqas
Anosha Kafait
Taseer Muhammad
Umar Farooq
author_sort Hassan Waqas
title Numerical study for bio-convection flow of tangent hyperbolic nanofluid over a Riga plate with activation energy
title_short Numerical study for bio-convection flow of tangent hyperbolic nanofluid over a Riga plate with activation energy
title_full Numerical study for bio-convection flow of tangent hyperbolic nanofluid over a Riga plate with activation energy
title_fullStr Numerical study for bio-convection flow of tangent hyperbolic nanofluid over a Riga plate with activation energy
title_full_unstemmed Numerical study for bio-convection flow of tangent hyperbolic nanofluid over a Riga plate with activation energy
title_sort numerical study for bio-convection flow of tangent hyperbolic nanofluid over a riga plate with activation energy
publisher Elsevier
publishDate 2022
url https://doaj.org/article/21d3803e7bf14b0c91a22303fd60dcb8
work_keys_str_mv AT hassanwaqas numericalstudyforbioconvectionflowoftangenthyperbolicnanofluidoverarigaplatewithactivationenergy
AT anoshakafait numericalstudyforbioconvectionflowoftangenthyperbolicnanofluidoverarigaplatewithactivationenergy
AT taseermuhammad numericalstudyforbioconvectionflowoftangenthyperbolicnanofluidoverarigaplatewithactivationenergy
AT umarfarooq numericalstudyforbioconvectionflowoftangenthyperbolicnanofluidoverarigaplatewithactivationenergy
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