Numerical solution of nonlinear diff. equations for heat transfer in micropolar fluids over a stretching domain

A numerical study based on finite difference approximation is attempted to analyze the bulk flow, micro spin flow and heat transfer phenomenon for micropolar fluids dynamics through Darcy porous medium. The fluid flow mechanism is considered over a moving permeable sheet. The heat transfer is associ...

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Main Authors: Farooq Ahmad, Almatroud, A. Othman, Hussain, Sajjad, Farooq, Shan E., Ullah, Roman
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2020
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Online Access:https://hdl.handle.net/10356/145587
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1455872023-03-04T17:19:25Z Numerical solution of nonlinear diff. equations for heat transfer in micropolar fluids over a stretching domain Farooq Ahmad Almatroud, A. Othman Hussain, Sajjad Farooq, Shan E. Ullah, Roman School of Mechanical and Aerospace Engineering Science::Mathematics Solution of Nonlinear Equations Micropolar Fluids A numerical study based on finite difference approximation is attempted to analyze the bulk flow, micro spin flow and heat transfer phenomenon for micropolar fluids dynamics through Darcy porous medium. The fluid flow mechanism is considered over a moving permeable sheet. The heat transfer is associated with two different sets of boundary conditions, the isothermal wall and isoflux boundary. On the basis of porosity of medium, similarity functions are utilized to avail a set of ordinary differential equations. The non-linear coupled ODE’s have been solved with a very stable and reliable numerical scheme that involves Simpson’s Rule and Successive over Relaxation method. The accuracy of the results is improved by making iterations on three different grid sizes and higher order accuracy in the results is achieved by Richardson extrapolation. This study provides realistic and differentiated results with due considerations of micropolar fluid theory. The micropolar material parameters demonstrated reduction in the bulk fluid speed, thermal distribution and skin friction coefficient but increase in local heat transfer rate and couple stress. The spin behavior of microstructures is also exhibited through microrotation vector N(η) . Published version 2020-12-29T08:55:06Z 2020-12-29T08:55:06Z 2020 Journal Article Farooq Ahmad, Almatroud, A. O., Hussain, S., Farooq, S. E., & Ullah, R. (2020). Numerical solution of nonlinear diff. equations for heat transfer in micropolar fluids over a stretching domain. Mathematics, 8(5), 854-. doi:10.3390/math8050854 2227-7390 https://hdl.handle.net/10356/145587 10.3390/math8050854 5 8 en Mathematics © 2020 The Authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/). application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Science::Mathematics
Solution of Nonlinear Equations
Micropolar Fluids
spellingShingle Science::Mathematics
Solution of Nonlinear Equations
Micropolar Fluids
Farooq Ahmad
Almatroud, A. Othman
Hussain, Sajjad
Farooq, Shan E.
Ullah, Roman
Numerical solution of nonlinear diff. equations for heat transfer in micropolar fluids over a stretching domain
description A numerical study based on finite difference approximation is attempted to analyze the bulk flow, micro spin flow and heat transfer phenomenon for micropolar fluids dynamics through Darcy porous medium. The fluid flow mechanism is considered over a moving permeable sheet. The heat transfer is associated with two different sets of boundary conditions, the isothermal wall and isoflux boundary. On the basis of porosity of medium, similarity functions are utilized to avail a set of ordinary differential equations. The non-linear coupled ODE’s have been solved with a very stable and reliable numerical scheme that involves Simpson’s Rule and Successive over Relaxation method. The accuracy of the results is improved by making iterations on three different grid sizes and higher order accuracy in the results is achieved by Richardson extrapolation. This study provides realistic and differentiated results with due considerations of micropolar fluid theory. The micropolar material parameters demonstrated reduction in the bulk fluid speed, thermal distribution and skin friction coefficient but increase in local heat transfer rate and couple stress. The spin behavior of microstructures is also exhibited through microrotation vector N(η) .
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Farooq Ahmad
Almatroud, A. Othman
Hussain, Sajjad
Farooq, Shan E.
Ullah, Roman
format Article
author Farooq Ahmad
Almatroud, A. Othman
Hussain, Sajjad
Farooq, Shan E.
Ullah, Roman
author_sort Farooq Ahmad
title Numerical solution of nonlinear diff. equations for heat transfer in micropolar fluids over a stretching domain
title_short Numerical solution of nonlinear diff. equations for heat transfer in micropolar fluids over a stretching domain
title_full Numerical solution of nonlinear diff. equations for heat transfer in micropolar fluids over a stretching domain
title_fullStr Numerical solution of nonlinear diff. equations for heat transfer in micropolar fluids over a stretching domain
title_full_unstemmed Numerical solution of nonlinear diff. equations for heat transfer in micropolar fluids over a stretching domain
title_sort numerical solution of nonlinear diff. equations for heat transfer in micropolar fluids over a stretching domain
publishDate 2020
url https://hdl.handle.net/10356/145587
_version_ 1759857037925154816