Numerical approach towards gyrotactic microorganisms hybrid nanoliquid flow with the hall current and magnetic field over a spinning disk

Abstract The article explores the effect of Hall current, thermal radiation, and magnetic field on hybrid nanofluid flow over the surface of a spinning disk. The motive of the present effort is to upgrade the heat transmission rate for engineering and industrial purposes. The hybrid nanofluids as co...

Descripción completa

Guardado en:
Detalles Bibliográficos
Autores principales: Yu-Pei Lv, Ebrahem A. Algehyne, Maryam G. Alshehri, Ebraheem Alzahrani, Muhammad Bilal, Muhammad Altaf Khan, Muhammad Shuaib
Formato: article
Lenguaje:EN
Publicado: Nature Portfolio 2021
Materias:
R
Q
Acceso en línea:https://doaj.org/article/0c6b11432baa4ffdb7348c20a3519b62
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
id oai:doaj.org-article:0c6b11432baa4ffdb7348c20a3519b62
record_format dspace
spelling oai:doaj.org-article:0c6b11432baa4ffdb7348c20a3519b622021-12-02T13:41:34ZNumerical approach towards gyrotactic microorganisms hybrid nanoliquid flow with the hall current and magnetic field over a spinning disk10.1038/s41598-021-88269-62045-2322https://doaj.org/article/0c6b11432baa4ffdb7348c20a3519b622021-04-01T00:00:00Zhttps://doi.org/10.1038/s41598-021-88269-6https://doaj.org/toc/2045-2322Abstract The article explores the effect of Hall current, thermal radiation, and magnetic field on hybrid nanofluid flow over the surface of a spinning disk. The motive of the present effort is to upgrade the heat transmission rate for engineering and industrial purposes. The hybrid nanofluids as compared to the conventional fluids have higher thermal properties. Therefore, in the present article, a special class of nanoparticles known as carbon nanotubes (CNTs) and iron ferrite nanoparticles are used in the base fluid. The system of modeled equations is depleted into dimensionless differential equations through similarity transformation. The transform equations are further solved through the Parametric Continuation method (PCM). For the parametric study, the physical parameters impact on velocity, energy, mass transmission, and motile microorganism’s concentration profiles have been sketched. The obtained results are compared with the existing literature, which shows the best settlement. It concluded that the heat transmission rate reduces for Hall current and rises with radiative parameter. The results perceived that the addition of CNTs in carrier fluid is more efficacious than any other types of nanoparticles, due to its C–C bond. CNTs nanofluid can be more functionalized for the desired achievement, which can be utilized for a variety of applications by functionalization of non-covalent and covalent modification.Yu-Pei LvEbrahem A. AlgehyneMaryam G. AlshehriEbraheem AlzahraniMuhammad BilalMuhammad Altaf KhanMuhammad ShuaibNature PortfolioarticleMedicineRScienceQENScientific Reports, Vol 11, Iss 1, Pp 1-13 (2021)
institution DOAJ
collection DOAJ
language EN
topic Medicine
R
Science
Q
spellingShingle Medicine
R
Science
Q
Yu-Pei Lv
Ebrahem A. Algehyne
Maryam G. Alshehri
Ebraheem Alzahrani
Muhammad Bilal
Muhammad Altaf Khan
Muhammad Shuaib
Numerical approach towards gyrotactic microorganisms hybrid nanoliquid flow with the hall current and magnetic field over a spinning disk
description Abstract The article explores the effect of Hall current, thermal radiation, and magnetic field on hybrid nanofluid flow over the surface of a spinning disk. The motive of the present effort is to upgrade the heat transmission rate for engineering and industrial purposes. The hybrid nanofluids as compared to the conventional fluids have higher thermal properties. Therefore, in the present article, a special class of nanoparticles known as carbon nanotubes (CNTs) and iron ferrite nanoparticles are used in the base fluid. The system of modeled equations is depleted into dimensionless differential equations through similarity transformation. The transform equations are further solved through the Parametric Continuation method (PCM). For the parametric study, the physical parameters impact on velocity, energy, mass transmission, and motile microorganism’s concentration profiles have been sketched. The obtained results are compared with the existing literature, which shows the best settlement. It concluded that the heat transmission rate reduces for Hall current and rises with radiative parameter. The results perceived that the addition of CNTs in carrier fluid is more efficacious than any other types of nanoparticles, due to its C–C bond. CNTs nanofluid can be more functionalized for the desired achievement, which can be utilized for a variety of applications by functionalization of non-covalent and covalent modification.
format article
author Yu-Pei Lv
Ebrahem A. Algehyne
Maryam G. Alshehri
Ebraheem Alzahrani
Muhammad Bilal
Muhammad Altaf Khan
Muhammad Shuaib
author_facet Yu-Pei Lv
Ebrahem A. Algehyne
Maryam G. Alshehri
Ebraheem Alzahrani
Muhammad Bilal
Muhammad Altaf Khan
Muhammad Shuaib
author_sort Yu-Pei Lv
title Numerical approach towards gyrotactic microorganisms hybrid nanoliquid flow with the hall current and magnetic field over a spinning disk
title_short Numerical approach towards gyrotactic microorganisms hybrid nanoliquid flow with the hall current and magnetic field over a spinning disk
title_full Numerical approach towards gyrotactic microorganisms hybrid nanoliquid flow with the hall current and magnetic field over a spinning disk
title_fullStr Numerical approach towards gyrotactic microorganisms hybrid nanoliquid flow with the hall current and magnetic field over a spinning disk
title_full_unstemmed Numerical approach towards gyrotactic microorganisms hybrid nanoliquid flow with the hall current and magnetic field over a spinning disk
title_sort numerical approach towards gyrotactic microorganisms hybrid nanoliquid flow with the hall current and magnetic field over a spinning disk
publisher Nature Portfolio
publishDate 2021
url https://doaj.org/article/0c6b11432baa4ffdb7348c20a3519b62
work_keys_str_mv AT yupeilv numericalapproachtowardsgyrotacticmicroorganismshybridnanoliquidflowwiththehallcurrentandmagneticfieldoveraspinningdisk
AT ebrahemaalgehyne numericalapproachtowardsgyrotacticmicroorganismshybridnanoliquidflowwiththehallcurrentandmagneticfieldoveraspinningdisk
AT maryamgalshehri numericalapproachtowardsgyrotacticmicroorganismshybridnanoliquidflowwiththehallcurrentandmagneticfieldoveraspinningdisk
AT ebraheemalzahrani numericalapproachtowardsgyrotacticmicroorganismshybridnanoliquidflowwiththehallcurrentandmagneticfieldoveraspinningdisk
AT muhammadbilal numericalapproachtowardsgyrotacticmicroorganismshybridnanoliquidflowwiththehallcurrentandmagneticfieldoveraspinningdisk
AT muhammadaltafkhan numericalapproachtowardsgyrotacticmicroorganismshybridnanoliquidflowwiththehallcurrentandmagneticfieldoveraspinningdisk
AT muhammadshuaib numericalapproachtowardsgyrotacticmicroorganismshybridnanoliquidflowwiththehallcurrentandmagneticfieldoveraspinningdisk
_version_ 1718392538835976192