Optimal and Numerical Solutions for an MHD Micropolar Nanofluid between Rotating Horizontal Parallel Plates.

The present analysis deals with flow and heat transfer aspects of a micropolar nanofluid between two horizontal parallel plates in a rotating system. The governing partial differential equations for momentum, energy, micro rotation and nano-particles concentration are presented. Similarity transform...

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Main Authors: Sohail Nadeem, Sadaf Masood, Rashid Mehmood, Muhammad Adil Sadiq
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4457579?pdf=render
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spelling doaj-e8775d7472bc431d9a000a8be52b77af2020-11-24T21:24:18ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01106e012401610.1371/journal.pone.0124016Optimal and Numerical Solutions for an MHD Micropolar Nanofluid between Rotating Horizontal Parallel Plates.Sohail NadeemSadaf MasoodRashid MehmoodMuhammad Adil SadiqThe present analysis deals with flow and heat transfer aspects of a micropolar nanofluid between two horizontal parallel plates in a rotating system. The governing partial differential equations for momentum, energy, micro rotation and nano-particles concentration are presented. Similarity transformations are utilized to convert the system of partial differential equations into system of ordinary differential equations. The reduced equations are solved analytically with the help of optimal homotopy analysis method (OHAM). Analytical solutions for velocity, temperature, micro-rotation and concentration profiles are expressed graphically against various emerging physical parameters. Physical quantities of interest such as skin friction co-efficient, local heat and local mass fluxes are also computed both analytically and numerically through mid-point integration scheme. It is found that both the solutions are in excellent agreement. Local skin friction coefficient is found to be higher for the case of strong concentration i.e. n=0, as compared to the case of weak concentration n=0.50. Influence of strong and weak concentration on Nusselt and Sherwood number appear to be similar in a quantitative sense.http://europepmc.org/articles/PMC4457579?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Sohail Nadeem
Sadaf Masood
Rashid Mehmood
Muhammad Adil Sadiq
spellingShingle Sohail Nadeem
Sadaf Masood
Rashid Mehmood
Muhammad Adil Sadiq
Optimal and Numerical Solutions for an MHD Micropolar Nanofluid between Rotating Horizontal Parallel Plates.
PLoS ONE
author_facet Sohail Nadeem
Sadaf Masood
Rashid Mehmood
Muhammad Adil Sadiq
author_sort Sohail Nadeem
title Optimal and Numerical Solutions for an MHD Micropolar Nanofluid between Rotating Horizontal Parallel Plates.
title_short Optimal and Numerical Solutions for an MHD Micropolar Nanofluid between Rotating Horizontal Parallel Plates.
title_full Optimal and Numerical Solutions for an MHD Micropolar Nanofluid between Rotating Horizontal Parallel Plates.
title_fullStr Optimal and Numerical Solutions for an MHD Micropolar Nanofluid between Rotating Horizontal Parallel Plates.
title_full_unstemmed Optimal and Numerical Solutions for an MHD Micropolar Nanofluid between Rotating Horizontal Parallel Plates.
title_sort optimal and numerical solutions for an mhd micropolar nanofluid between rotating horizontal parallel plates.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description The present analysis deals with flow and heat transfer aspects of a micropolar nanofluid between two horizontal parallel plates in a rotating system. The governing partial differential equations for momentum, energy, micro rotation and nano-particles concentration are presented. Similarity transformations are utilized to convert the system of partial differential equations into system of ordinary differential equations. The reduced equations are solved analytically with the help of optimal homotopy analysis method (OHAM). Analytical solutions for velocity, temperature, micro-rotation and concentration profiles are expressed graphically against various emerging physical parameters. Physical quantities of interest such as skin friction co-efficient, local heat and local mass fluxes are also computed both analytically and numerically through mid-point integration scheme. It is found that both the solutions are in excellent agreement. Local skin friction coefficient is found to be higher for the case of strong concentration i.e. n=0, as compared to the case of weak concentration n=0.50. Influence of strong and weak concentration on Nusselt and Sherwood number appear to be similar in a quantitative sense.
url http://europepmc.org/articles/PMC4457579?pdf=render
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AT rashidmehmood optimalandnumericalsolutionsforanmhdmicropolarnanofluidbetweenrotatinghorizontalparallelplates
AT muhammadadilsadiq optimalandnumericalsolutionsforanmhdmicropolarnanofluidbetweenrotatinghorizontalparallelplates
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