Numerical Solutions for Laminar Boundary Layer Nanofluid Flow along with a Moving Cylinder with Heat Generation, Thermal Radiation, and Slip Parameter

The investigation of the numerical solution of the laminar boundary layer flow along with a moving cylinder with heat generation, thermal radiation, and surface slip effect is carried out. The fluid mathematical model developed from the Navier-Stokes equations resulted in a system of partial differe...

Full description

Saved in:
Bibliographic Details
Main Authors: Titilayo Morenike Agbaje, Gilbert Makanda
Format: Article
Language:English
Published: Wiley 2021-01-01
Series:Abstract and Applied Analysis
Online Access:http://dx.doi.org/10.1155/2021/8288534
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1832565686145122304
author Titilayo Morenike Agbaje
Gilbert Makanda
author_facet Titilayo Morenike Agbaje
Gilbert Makanda
author_sort Titilayo Morenike Agbaje
collection DOAJ
description The investigation of the numerical solution of the laminar boundary layer flow along with a moving cylinder with heat generation, thermal radiation, and surface slip effect is carried out. The fluid mathematical model developed from the Navier-Stokes equations resulted in a system of partial differential equations which were then solved by the multidomain bivariate spectral quasilinearization method (MD-BSQLM). The results show that increasing the velocity slip factor results in an enhanced increase in velocity and temperature profiles. Increasing the heat generation parameter increases temperature profiles; increasing the radiation parameter and the Eckert numbers both increase the temperature profiles. The concentration profiles decrease with increasing radial coordinate. Increasing the Brownian motion and the thermophoresis parameter both destabilizes the concentration profiles. Increasing the Schmidt number reduces temperature profiles. The effect of increasing selected parameters: the velocity slip, Brownian motion, and the radiation parameter on all residual errors show that these errors do not deteriorate. This shows that the MD-BSQLM is very accurate and robust. The method was compared with similar results in the literature and was found to be in excellent agreement.
format Article
id doaj-art-efb3838db60d45b0b500a2d839018e93
institution Kabale University
issn 1687-0409
language English
publishDate 2021-01-01
publisher Wiley
record_format Article
series Abstract and Applied Analysis
spelling doaj-art-efb3838db60d45b0b500a2d839018e932025-02-03T01:07:05ZengWileyAbstract and Applied Analysis1687-04092021-01-01202110.1155/2021/8288534Numerical Solutions for Laminar Boundary Layer Nanofluid Flow along with a Moving Cylinder with Heat Generation, Thermal Radiation, and Slip ParameterTitilayo Morenike Agbaje0Gilbert Makanda1Center for Sustainable Smart CitiesCenter for Sustainable Smart CitiesThe investigation of the numerical solution of the laminar boundary layer flow along with a moving cylinder with heat generation, thermal radiation, and surface slip effect is carried out. The fluid mathematical model developed from the Navier-Stokes equations resulted in a system of partial differential equations which were then solved by the multidomain bivariate spectral quasilinearization method (MD-BSQLM). The results show that increasing the velocity slip factor results in an enhanced increase in velocity and temperature profiles. Increasing the heat generation parameter increases temperature profiles; increasing the radiation parameter and the Eckert numbers both increase the temperature profiles. The concentration profiles decrease with increasing radial coordinate. Increasing the Brownian motion and the thermophoresis parameter both destabilizes the concentration profiles. Increasing the Schmidt number reduces temperature profiles. The effect of increasing selected parameters: the velocity slip, Brownian motion, and the radiation parameter on all residual errors show that these errors do not deteriorate. This shows that the MD-BSQLM is very accurate and robust. The method was compared with similar results in the literature and was found to be in excellent agreement.http://dx.doi.org/10.1155/2021/8288534
spellingShingle Titilayo Morenike Agbaje
Gilbert Makanda
Numerical Solutions for Laminar Boundary Layer Nanofluid Flow along with a Moving Cylinder with Heat Generation, Thermal Radiation, and Slip Parameter
Abstract and Applied Analysis
title Numerical Solutions for Laminar Boundary Layer Nanofluid Flow along with a Moving Cylinder with Heat Generation, Thermal Radiation, and Slip Parameter
title_full Numerical Solutions for Laminar Boundary Layer Nanofluid Flow along with a Moving Cylinder with Heat Generation, Thermal Radiation, and Slip Parameter
title_fullStr Numerical Solutions for Laminar Boundary Layer Nanofluid Flow along with a Moving Cylinder with Heat Generation, Thermal Radiation, and Slip Parameter
title_full_unstemmed Numerical Solutions for Laminar Boundary Layer Nanofluid Flow along with a Moving Cylinder with Heat Generation, Thermal Radiation, and Slip Parameter
title_short Numerical Solutions for Laminar Boundary Layer Nanofluid Flow along with a Moving Cylinder with Heat Generation, Thermal Radiation, and Slip Parameter
title_sort numerical solutions for laminar boundary layer nanofluid flow along with a moving cylinder with heat generation thermal radiation and slip parameter
url http://dx.doi.org/10.1155/2021/8288534
work_keys_str_mv AT titilayomorenikeagbaje numericalsolutionsforlaminarboundarylayernanofluidflowalongwithamovingcylinderwithheatgenerationthermalradiationandslipparameter
AT gilbertmakanda numericalsolutionsforlaminarboundarylayernanofluidflowalongwithamovingcylinderwithheatgenerationthermalradiationandslipparameter