Nonlinear mixed convective nanofluid flow about a rough sphere with the diffusion of liquid hydrogen

In this paper, a study of steady nonlinear mixed convective nanoliquid flow about a rough sphere with the diffusion of liquid hydrogen is considered. The governing equations are first modelled from the current physical problem, and then, suitable non-similar transformations are applied to non-dimens...

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Main Authors: P.M. Patil, H.F. Shankar, P.S. Hiremath, E. Momoniat
Format: Article
Language:English
Published: Elsevier 2021-02-01
Series:Alexandria Engineering Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1110016820305548
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author P.M. Patil
H.F. Shankar
P.S. Hiremath
E. Momoniat
author_facet P.M. Patil
H.F. Shankar
P.S. Hiremath
E. Momoniat
author_sort P.M. Patil
collection DOAJ
description In this paper, a study of steady nonlinear mixed convective nanoliquid flow about a rough sphere with the diffusion of liquid hydrogen is considered. The governing equations are first modelled from the current physical problem, and then, suitable non-similar transformations are applied to non-dimensionalize the model equations. The resultant nonlinear dimensionless equations are linearized by using the Quasilinearization technique. The resulting linear system of differential equations are approximated by finite differences to obtain numerical solutions. The impacts of different physical parameters involved in the problem, such as the distribution of velocity, temperature, nanoparticle volume fraction and species concentration are studied. The analysis of wall gradients is carried out, which discusses the skin friction, heat and mass transfer rates defined at the surface of the sphere. The graphs of numerical results are plotted, which reveal that the flow velocity is increased, while the fluid temperature is reduced, for increasing values of the roughness parameter. The presence of mixed convection parameter delays the occurrence of separation in the boundary layer in both the cases of an ordinary fluid and a nanofluid. For increasing values of the Schmidt number, the species concentration decreases, while the rate of mass transfer increases. Moreover, the thermophoresis parameter of the nanofluid increases the fluid's temperature, while it decreases the heat transfer rate. The fluid's temperature reduces for larger values of nonlinear convection parameter. Also, the flow velocity increases for the diffusion of liquid hydrogen.
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spelling doaj.art-679ca1645f304a4c938616a46c712a332022-12-21T22:41:04ZengElsevierAlexandria Engineering Journal1110-01682021-02-0160110431053Nonlinear mixed convective nanofluid flow about a rough sphere with the diffusion of liquid hydrogenP.M. Patil0H.F. Shankar1P.S. Hiremath2E. Momoniat3Department of Mathematics, Karnatak University, Pavate Nagar, Dharwad 580003, India; Department of Mathematics and Applied Mathematics, University of Johannesburg, P.O. Box 524, Auckland Park 2006, South AfricaDepartment of Mathematics, Karnatak University, Pavate Nagar, Dharwad 580003, IndiaDepartment of Computer Science (MCA), KLE Technological University, BVB Campus, Hubli 580031, IndiaDepartment of Mathematics and Applied Mathematics, University of Johannesburg, P.O. Box 524, Auckland Park 2006, South Africa; Corresponding author.In this paper, a study of steady nonlinear mixed convective nanoliquid flow about a rough sphere with the diffusion of liquid hydrogen is considered. The governing equations are first modelled from the current physical problem, and then, suitable non-similar transformations are applied to non-dimensionalize the model equations. The resultant nonlinear dimensionless equations are linearized by using the Quasilinearization technique. The resulting linear system of differential equations are approximated by finite differences to obtain numerical solutions. The impacts of different physical parameters involved in the problem, such as the distribution of velocity, temperature, nanoparticle volume fraction and species concentration are studied. The analysis of wall gradients is carried out, which discusses the skin friction, heat and mass transfer rates defined at the surface of the sphere. The graphs of numerical results are plotted, which reveal that the flow velocity is increased, while the fluid temperature is reduced, for increasing values of the roughness parameter. The presence of mixed convection parameter delays the occurrence of separation in the boundary layer in both the cases of an ordinary fluid and a nanofluid. For increasing values of the Schmidt number, the species concentration decreases, while the rate of mass transfer increases. Moreover, the thermophoresis parameter of the nanofluid increases the fluid's temperature, while it decreases the heat transfer rate. The fluid's temperature reduces for larger values of nonlinear convection parameter. Also, the flow velocity increases for the diffusion of liquid hydrogen.http://www.sciencedirect.com/science/article/pii/S1110016820305548NanofluidNonlinear mixed convectionRough sphereQuasilinearization
spellingShingle P.M. Patil
H.F. Shankar
P.S. Hiremath
E. Momoniat
Nonlinear mixed convective nanofluid flow about a rough sphere with the diffusion of liquid hydrogen
Alexandria Engineering Journal
Nanofluid
Nonlinear mixed convection
Rough sphere
Quasilinearization
title Nonlinear mixed convective nanofluid flow about a rough sphere with the diffusion of liquid hydrogen
title_full Nonlinear mixed convective nanofluid flow about a rough sphere with the diffusion of liquid hydrogen
title_fullStr Nonlinear mixed convective nanofluid flow about a rough sphere with the diffusion of liquid hydrogen
title_full_unstemmed Nonlinear mixed convective nanofluid flow about a rough sphere with the diffusion of liquid hydrogen
title_short Nonlinear mixed convective nanofluid flow about a rough sphere with the diffusion of liquid hydrogen
title_sort nonlinear mixed convective nanofluid flow about a rough sphere with the diffusion of liquid hydrogen
topic Nanofluid
Nonlinear mixed convection
Rough sphere
Quasilinearization
url http://www.sciencedirect.com/science/article/pii/S1110016820305548
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