Computational modelling of multiphase fluid flow behaviour over a stretching sheet in the presence of nanoparticles

Present study analysed hydrodynamic flow behaviour of multiphase radiative Casson and Maxwell fluids with the appearance of nano-sized particles. The impression of a nonlinear chemical reaction is also considered. Firstly, the time-dependent governing equations were computationally resolved using fi...

Full description

Bibliographic Details
Main Authors: Sk. Reza-E-Rabbi, Sarder Firoz Ahmmed, S.M. Arifuzzaman, Tanmoy Sarkar, Md. Shakhaoath Khan
Format: Article
Language:English
Published: Elsevier 2020-06-01
Series:Engineering Science and Technology, an International Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2215098618315891
id doaj-decefdf8f0bb4850bc61cff9ae59cdcf
record_format Article
spelling doaj-decefdf8f0bb4850bc61cff9ae59cdcf2020-11-25T02:54:25ZengElsevierEngineering Science and Technology, an International Journal2215-09862020-06-01233605617Computational modelling of multiphase fluid flow behaviour over a stretching sheet in the presence of nanoparticlesSk. Reza-E-Rabbi0Sarder Firoz Ahmmed1S.M. Arifuzzaman2Tanmoy Sarkar3Md. Shakhaoath Khan4Department of Basic Sciences and Humanities, University of Asia Pacific, Dhaka 1207, BangladeshMathematics Discipline, Khulna University, Khulna 9208, BangladeshCentre for Infrastructure Engineering, Western Sydney University, NSW 2751, AustraliaMathematics Discipline, Khulna University, Khulna 9208, BangladeshCollege of Science, Engineering and Health, RMIT University, VIC 3001, Australia; Corresponding author.Present study analysed hydrodynamic flow behaviour of multiphase radiative Casson and Maxwell fluids with the appearance of nano-sized particles. The impression of a nonlinear chemical reaction is also considered. Firstly, the time-dependent governing equations were computationally resolved using finite difference discretisation methods. Secondly, the convergence analysis with stabilisation of the numerical approach is carried out where the current model has converged for Le ≥ 0.025 and Pr ≥ 0.075. Finally, the impressions of various pertinent parameters are depicted diagrammatically along with tabular analysis on diversified flow fields. The main aim is to define and draw a comparison between Maxwell and Casson fluids on different flow fields. In addition, a comparative study between these two fluids is also newly carried out in this work through the analysis of streamlines and isotherms plotting. Furthermore, the thermal and mass properties found significantly improved mostly in the case of Maxwell fluid. However, Eckert number, Ec, has influenced the temperature field significantly for Casson fluid, and some parameters (Du, Nt, Nb, Le, Pr and Sr) have represented the identical impact on respective fields for both fluids. For the numerical validation, some comparisons are also shown with previous studies and satisfactory agreement is observed.http://www.sciencedirect.com/science/article/pii/S2215098618315891Casson and Maxwell fluidsNanoparticlesThermal radiationChemical reactionStretching sheet
collection DOAJ
language English
format Article
sources DOAJ
author Sk. Reza-E-Rabbi
Sarder Firoz Ahmmed
S.M. Arifuzzaman
Tanmoy Sarkar
Md. Shakhaoath Khan
spellingShingle Sk. Reza-E-Rabbi
Sarder Firoz Ahmmed
S.M. Arifuzzaman
Tanmoy Sarkar
Md. Shakhaoath Khan
Computational modelling of multiphase fluid flow behaviour over a stretching sheet in the presence of nanoparticles
Engineering Science and Technology, an International Journal
Casson and Maxwell fluids
Nanoparticles
Thermal radiation
Chemical reaction
Stretching sheet
author_facet Sk. Reza-E-Rabbi
Sarder Firoz Ahmmed
S.M. Arifuzzaman
Tanmoy Sarkar
Md. Shakhaoath Khan
author_sort Sk. Reza-E-Rabbi
title Computational modelling of multiphase fluid flow behaviour over a stretching sheet in the presence of nanoparticles
title_short Computational modelling of multiphase fluid flow behaviour over a stretching sheet in the presence of nanoparticles
title_full Computational modelling of multiphase fluid flow behaviour over a stretching sheet in the presence of nanoparticles
title_fullStr Computational modelling of multiphase fluid flow behaviour over a stretching sheet in the presence of nanoparticles
title_full_unstemmed Computational modelling of multiphase fluid flow behaviour over a stretching sheet in the presence of nanoparticles
title_sort computational modelling of multiphase fluid flow behaviour over a stretching sheet in the presence of nanoparticles
publisher Elsevier
series Engineering Science and Technology, an International Journal
issn 2215-0986
publishDate 2020-06-01
description Present study analysed hydrodynamic flow behaviour of multiphase radiative Casson and Maxwell fluids with the appearance of nano-sized particles. The impression of a nonlinear chemical reaction is also considered. Firstly, the time-dependent governing equations were computationally resolved using finite difference discretisation methods. Secondly, the convergence analysis with stabilisation of the numerical approach is carried out where the current model has converged for Le ≥ 0.025 and Pr ≥ 0.075. Finally, the impressions of various pertinent parameters are depicted diagrammatically along with tabular analysis on diversified flow fields. The main aim is to define and draw a comparison between Maxwell and Casson fluids on different flow fields. In addition, a comparative study between these two fluids is also newly carried out in this work through the analysis of streamlines and isotherms plotting. Furthermore, the thermal and mass properties found significantly improved mostly in the case of Maxwell fluid. However, Eckert number, Ec, has influenced the temperature field significantly for Casson fluid, and some parameters (Du, Nt, Nb, Le, Pr and Sr) have represented the identical impact on respective fields for both fluids. For the numerical validation, some comparisons are also shown with previous studies and satisfactory agreement is observed.
topic Casson and Maxwell fluids
Nanoparticles
Thermal radiation
Chemical reaction
Stretching sheet
url http://www.sciencedirect.com/science/article/pii/S2215098618315891
work_keys_str_mv AT skrezaerabbi computationalmodellingofmultiphasefluidflowbehaviouroverastretchingsheetinthepresenceofnanoparticles
AT sarderfirozahmmed computationalmodellingofmultiphasefluidflowbehaviouroverastretchingsheetinthepresenceofnanoparticles
AT smarifuzzaman computationalmodellingofmultiphasefluidflowbehaviouroverastretchingsheetinthepresenceofnanoparticles
AT tanmoysarkar computationalmodellingofmultiphasefluidflowbehaviouroverastretchingsheetinthepresenceofnanoparticles
AT mdshakhaoathkhan computationalmodellingofmultiphasefluidflowbehaviouroverastretchingsheetinthepresenceofnanoparticles
_version_ 1724721322468048896