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Article

Analytical Simulation for Magnetohydrodynamic Maxwell Fluid Flow Past an Exponentially Stretching Surface with First-Order Velocity Slip Condition

1
Department of Mathematics, Abdul Wali Khan University, Mardan 23200, Pakistan
2
Center of Excellence in Theoretical and Computational Science (TaCS-CoE), Faculty of Science, King Mongkut’s University of Technology Thonburi (KMUTT), 126 Pracha Uthit Rd., Bang Mod, Bangkok 10140, Thailand
3
Department of Mathematical Sciences, University of Lakki Marwat, Lakki Marwat 28420, Pakistan
4
Program in Applied Statistics, Applied Mathematics for Science and Engineering Research Unit (AMSERU), Department of Mathematics and Computer Science, Faculty of Science and Technology, Rajamangala University of Technology Thanyaburi, Pathumthani 12110, Thailand
5
Department of Medical Research, China Medical University Hospital, China Medical University, Taichung 40402, Taiwan
*
Author to whom correspondence should be addressed.
Coatings 2021, 11(8), 1009; https://doi.org/10.3390/coatings11081009
Submission received: 2 August 2021 / Revised: 14 August 2021 / Accepted: 18 August 2021 / Published: 23 August 2021
(This article belongs to the Special Issue Nanofluidics: Interfacial Transport Phenomena)

Abstract

The study of fluid flow upon an exponentially stretching surface has significant importance due to its applications in technological phenomena at the industrial level. These applications include condensing process of fluid film, heat exchanger processes, extrusion of plastic sheet in aerodynamics, cooling process of metal sheet, and growth of crystals, etc. Keeping in view all these applications, in this paper, we have discussed the magnetohydrodynamic flow of Maxwell fluid past an exponentially stretching sheet. The stretching surface is considered to be slippery by imposing the velocity slip condition. The magnetic field impact is taken into consideration. Furthermore, heat radiation, Joule heating, Brownian motion, and thermophoresis are also considered. The modeled system is reduced to ordinary differential equations with the help of similarity variables. For the analytical solution, we have used the homotopy analysis method. Furthermore, HAM is compared with the shooting method and found to be in great agreement. The squared residual error of the fluid flow problem at 15th order of approximations for Newtonian and non-Newtonian cases has been investigated. It is found that the fluid flow problem converges quickly for the case of non-Newtonian fluid as compared to Newtonian fluid. In addition, the velocity profile increases while the thermal and concentration profiles reduce with greater values of Darcy number. The thermal profile is the increasing function of the Brownian motion parameter and Eckert number whereas the concentration profile is the reducing function of the Brownian motion parameter and Eckert number. With the augmentation in Darcy number, the permeability strength of porous medium increases which concludes the increasing conduct of thermal and mass transportation.
Keywords: Maxwell fluid; exponentially stretching sheet; velocity slip condition; porous medium; MHD Maxwell fluid; exponentially stretching sheet; velocity slip condition; porous medium; MHD

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MDPI and ACS Style

Dawar, A.; Saeed, A.; Shah, Z.; Kumam, W.; Islam, S.; Kumam, P. Analytical Simulation for Magnetohydrodynamic Maxwell Fluid Flow Past an Exponentially Stretching Surface with First-Order Velocity Slip Condition. Coatings 2021, 11, 1009. https://doi.org/10.3390/coatings11081009

AMA Style

Dawar A, Saeed A, Shah Z, Kumam W, Islam S, Kumam P. Analytical Simulation for Magnetohydrodynamic Maxwell Fluid Flow Past an Exponentially Stretching Surface with First-Order Velocity Slip Condition. Coatings. 2021; 11(8):1009. https://doi.org/10.3390/coatings11081009

Chicago/Turabian Style

Dawar, Abdullah, Anwar Saeed, Zahir Shah, Wiyada Kumam, Saeed Islam, and Poom Kumam. 2021. "Analytical Simulation for Magnetohydrodynamic Maxwell Fluid Flow Past an Exponentially Stretching Surface with First-Order Velocity Slip Condition" Coatings 11, no. 8: 1009. https://doi.org/10.3390/coatings11081009

APA Style

Dawar, A., Saeed, A., Shah, Z., Kumam, W., Islam, S., & Kumam, P. (2021). Analytical Simulation for Magnetohydrodynamic Maxwell Fluid Flow Past an Exponentially Stretching Surface with First-Order Velocity Slip Condition. Coatings, 11(8), 1009. https://doi.org/10.3390/coatings11081009

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