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Article

Darcy Brinkman Equations for Hybrid Dusty Nanofluid Flow with Heat Transfer and Mass Transpiration

1
Department of Mathematics, Davangere University, Shivagangothri, Davangere 577 007, India
2
CNRS (Centre National de la Recherche Scientifique), LMT (Laboratoire de Mécanique et Technologie—Labo. Méca. Tech.), Université Paris-Saclay, ENS (Ecole National Supérieure) Paris-Saclay, 91190 Gif-sur-Yvette, France
3
Institut Universitaire de Technologie de Longwy, Université de Lorraine 186 rue de Lorraine, 54400 Cosnes et Romain, France
*
Author to whom correspondence should be addressed.
Computation 2021, 9(11), 118; https://doi.org/10.3390/computation9110118
Submission received: 8 October 2021 / Revised: 1 November 2021 / Accepted: 4 November 2021 / Published: 9 November 2021
(This article belongs to the Special Issue Computational Heat, Mass, and Momentum Transfer—III)

Abstract

In the current work, we have investigated the flow past a semi-infinite porous solid media, after presenting a similarity transformation, governing equations mapped to a system of non-linear PDE. The flow of a dusty fluid and heat transfer through a porous medium have few applications, viz., the polymer processing unit of a geophysical, allied area, and chemical engineering plant. Further, we had the option to get an exact analytical solution for the velocity to the equation that is non-linear. The highlight of the current work is the flow of hybrid dusty nanofluid due to Darcy porous media through linear thermal radiation with the assistance of an analytical process. The hybrid dusty nanofluid has significant features improving the heat transfer process and is extensively developed in manufacturing industrial uses. It was found that the basic similarity equations admit two phases for both stretching/shrinking surfaces. The existence of computation on velocity and temperature profile is presented graphically for different estimations of various physical parameters.
Keywords: Darcy-Brinkman number; hybrid nanofluid; dusty fluid Darcy-Brinkman number; hybrid nanofluid; dusty fluid

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MDPI and ACS Style

Sneha, K.N.; Mahabaleshwar, U.S.; Bennacer, R.; Ganaoui, M.E. Darcy Brinkman Equations for Hybrid Dusty Nanofluid Flow with Heat Transfer and Mass Transpiration. Computation 2021, 9, 118. https://doi.org/10.3390/computation9110118

AMA Style

Sneha KN, Mahabaleshwar US, Bennacer R, Ganaoui ME. Darcy Brinkman Equations for Hybrid Dusty Nanofluid Flow with Heat Transfer and Mass Transpiration. Computation. 2021; 9(11):118. https://doi.org/10.3390/computation9110118

Chicago/Turabian Style

Sneha, K. N., U. S. Mahabaleshwar, Rachid Bennacer, and Mohammed EL. Ganaoui. 2021. "Darcy Brinkman Equations for Hybrid Dusty Nanofluid Flow with Heat Transfer and Mass Transpiration" Computation 9, no. 11: 118. https://doi.org/10.3390/computation9110118

APA Style

Sneha, K. N., Mahabaleshwar, U. S., Bennacer, R., & Ganaoui, M. E. (2021). Darcy Brinkman Equations for Hybrid Dusty Nanofluid Flow with Heat Transfer and Mass Transpiration. Computation, 9(11), 118. https://doi.org/10.3390/computation9110118

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