Entropy optimization of chemically reactive bioconvective Powell-Eyring nanofluid stratified flow over a Riga plate: A non-Fourier heat and mass flux modeling

This work examines the effects of Riga plate flow in a Powell-Eyring bioconvection Powell-Forchheimer medium. For the Powell-Eyring base fluid, mobile microorganisms are taken into account in addition to nanoparticles. Additionally taken into account are chemical reactions and the effects of linear...

Full description

Bibliographic Details
Main Authors: Pooja Agarwal, K. Loganathan, Reema Jain
Format: Article
Language:English
Published: Elsevier 2024-03-01
Series:Partial Differential Equations in Applied Mathematics
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2666818124000020
_version_ 1797260366910062592
author Pooja Agarwal
K. Loganathan
Reema Jain
author_facet Pooja Agarwal
K. Loganathan
Reema Jain
author_sort Pooja Agarwal
collection DOAJ
description This work examines the effects of Riga plate flow in a Powell-Eyring bioconvection Powell-Forchheimer medium. For the Powell-Eyring base fluid, mobile microorganisms are taken into account in addition to nanoparticles. Additionally taken into account are chemical reactions and the effects of linear radiation. The governing PDEs with boundary conditions are transformed into an ODE by using similarity transformation. The resulting equations are solved using the homotopy analysis approach. A detailed description is given of the link between the relevant parameters and the density of dynamic microorganisms, motion, fluid temperature, skin friction rates, local Sherwood and Nusselt numbers, and nanocomposite volume. Gyrotactic microorganism-containing nanoparticles have potential applications in biotechnology, microfluidic devices, microbial fuel cells, and enzyme biosensors. Various features of several physical characteristics are addressed through the use of tables and graphs.
first_indexed 2024-03-08T12:09:01Z
format Article
id doaj.art-c25c5fc2d0bf49edb1fe634dbb7e2bbf
institution Directory Open Access Journal
issn 2666-8181
language English
last_indexed 2024-04-24T23:24:11Z
publishDate 2024-03-01
publisher Elsevier
record_format Article
series Partial Differential Equations in Applied Mathematics
spelling doaj.art-c25c5fc2d0bf49edb1fe634dbb7e2bbf2024-03-16T05:09:29ZengElsevierPartial Differential Equations in Applied Mathematics2666-81812024-03-019100616Entropy optimization of chemically reactive bioconvective Powell-Eyring nanofluid stratified flow over a Riga plate: A non-Fourier heat and mass flux modelingPooja Agarwal0K. Loganathan1Reema Jain2Department of Mathematics & Statistics, Manipal University Jaipur, Jaipur 303007, Rajasthan, IndiaDepartment of Mathematics & Statistics, Manipal University Jaipur, Jaipur 303007, Rajasthan, IndiaCorresponding author.; Department of Mathematics & Statistics, Manipal University Jaipur, Jaipur 303007, Rajasthan, IndiaThis work examines the effects of Riga plate flow in a Powell-Eyring bioconvection Powell-Forchheimer medium. For the Powell-Eyring base fluid, mobile microorganisms are taken into account in addition to nanoparticles. Additionally taken into account are chemical reactions and the effects of linear radiation. The governing PDEs with boundary conditions are transformed into an ODE by using similarity transformation. The resulting equations are solved using the homotopy analysis approach. A detailed description is given of the link between the relevant parameters and the density of dynamic microorganisms, motion, fluid temperature, skin friction rates, local Sherwood and Nusselt numbers, and nanocomposite volume. Gyrotactic microorganism-containing nanoparticles have potential applications in biotechnology, microfluidic devices, microbial fuel cells, and enzyme biosensors. Various features of several physical characteristics are addressed through the use of tables and graphs.http://www.sciencedirect.com/science/article/pii/S2666818124000020Riga platePorous mediumNon-Newtonian nanofluidMicroorganismsHAM
spellingShingle Pooja Agarwal
K. Loganathan
Reema Jain
Entropy optimization of chemically reactive bioconvective Powell-Eyring nanofluid stratified flow over a Riga plate: A non-Fourier heat and mass flux modeling
Partial Differential Equations in Applied Mathematics
Riga plate
Porous medium
Non-Newtonian nanofluid
Microorganisms
HAM
title Entropy optimization of chemically reactive bioconvective Powell-Eyring nanofluid stratified flow over a Riga plate: A non-Fourier heat and mass flux modeling
title_full Entropy optimization of chemically reactive bioconvective Powell-Eyring nanofluid stratified flow over a Riga plate: A non-Fourier heat and mass flux modeling
title_fullStr Entropy optimization of chemically reactive bioconvective Powell-Eyring nanofluid stratified flow over a Riga plate: A non-Fourier heat and mass flux modeling
title_full_unstemmed Entropy optimization of chemically reactive bioconvective Powell-Eyring nanofluid stratified flow over a Riga plate: A non-Fourier heat and mass flux modeling
title_short Entropy optimization of chemically reactive bioconvective Powell-Eyring nanofluid stratified flow over a Riga plate: A non-Fourier heat and mass flux modeling
title_sort entropy optimization of chemically reactive bioconvective powell eyring nanofluid stratified flow over a riga plate a non fourier heat and mass flux modeling
topic Riga plate
Porous medium
Non-Newtonian nanofluid
Microorganisms
HAM
url http://www.sciencedirect.com/science/article/pii/S2666818124000020
work_keys_str_mv AT poojaagarwal entropyoptimizationofchemicallyreactivebioconvectivepowelleyringnanofluidstratifiedflowoverarigaplateanonfourierheatandmassfluxmodeling
AT kloganathan entropyoptimizationofchemicallyreactivebioconvectivepowelleyringnanofluidstratifiedflowoverarigaplateanonfourierheatandmassfluxmodeling
AT reemajain entropyoptimizationofchemicallyreactivebioconvectivepowelleyringnanofluidstratifiedflowoverarigaplateanonfourierheatandmassfluxmodeling