Darcy-Forchheimer relation in Casson type MHD nanofluid flow over non-linear stretching surface

Present article aims to discuss the characteristics of Casson type nanofluid maintained to flow through porous medium over non-linear stretching surface in the perspective of heat and mass transfer developments. A Casson type incompressible viscous nanofluid passes through the given porous medium vi...

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Main Authors: Ghulam Rasool, Ali J. Chamkha, Taseer Muhammad, Anum Shafiq, Ilyas Khan
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2020-06-01
Series:Propulsion and Power Research
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2212540X20300213
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author Ghulam Rasool
Ali J. Chamkha
Taseer Muhammad
Anum Shafiq
Ilyas Khan
author_facet Ghulam Rasool
Ali J. Chamkha
Taseer Muhammad
Anum Shafiq
Ilyas Khan
author_sort Ghulam Rasool
collection DOAJ
description Present article aims to discuss the characteristics of Casson type nanofluid maintained to flow through porous medium over non-linear stretching surface in the perspective of heat and mass transfer developments. A Casson type incompressible viscous nanofluid passes through the given porous medium via Darcy-Forchheimer relation. Slip boundary conditions are used for velocity, temperature and concentration of the nanoparticles. Brownian diffusion and thermophoresis is attended. An induced magnetic field effect is involved to accentuate the thermo-physical characteristics of the nanofluid. The model incorporates boundary layer formulations and small magnetic Reynolds for practical validity. A fourth order Runge-Kutta (RK) scheme is enforced to solve the system numerically. Graphs are prepared for various progressive values of non-dimensionalized parameters whereas; variation in wall drag factor, heat and mass transfer rates is analyzed through numerical data. Results indicate that momentum boundary layer reduces for stronger inertial impact and the resistance offered by the porous media to the fluid flow. Temperature is found as a progressive function for the Brownian motion factor and thermophoresis. The magnitude of wall drag factor, heat transfer and mass transfer rates shows reduction for progressive values of slip parameters.
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spelling doaj.art-aad6720f0f6c44d0849345cccb63b0d32023-09-03T00:42:08ZengKeAi Communications Co., Ltd.Propulsion and Power Research2212-540X2020-06-0192159168Darcy-Forchheimer relation in Casson type MHD nanofluid flow over non-linear stretching surfaceGhulam Rasool0Ali J. Chamkha1Taseer Muhammad2Anum Shafiq3Ilyas Khan4School of Mathematical Sciences, Zhejiang University, Hangzhou, Zhejiang, 310027, China; Corresponding author.Mechanical Engineering Department, Prince Mohammad Bin Fahd University, Al-Khobar, 31952, Saudi ArabiaDepartment of Mathematics, College of Science, King Khalid University, Abha, 61413, Saudi ArabiaSchool of Mathematics and Statistics, Nanjing University of Information Science and Technology, Nanjing, 210044, ChinaFaculty of Mathematics and Statistics, Ton Duc Thang University, Ho Chi Minh City, 72915, Viet NamPresent article aims to discuss the characteristics of Casson type nanofluid maintained to flow through porous medium over non-linear stretching surface in the perspective of heat and mass transfer developments. A Casson type incompressible viscous nanofluid passes through the given porous medium via Darcy-Forchheimer relation. Slip boundary conditions are used for velocity, temperature and concentration of the nanoparticles. Brownian diffusion and thermophoresis is attended. An induced magnetic field effect is involved to accentuate the thermo-physical characteristics of the nanofluid. The model incorporates boundary layer formulations and small magnetic Reynolds for practical validity. A fourth order Runge-Kutta (RK) scheme is enforced to solve the system numerically. Graphs are prepared for various progressive values of non-dimensionalized parameters whereas; variation in wall drag factor, heat and mass transfer rates is analyzed through numerical data. Results indicate that momentum boundary layer reduces for stronger inertial impact and the resistance offered by the porous media to the fluid flow. Temperature is found as a progressive function for the Brownian motion factor and thermophoresis. The magnitude of wall drag factor, heat transfer and mass transfer rates shows reduction for progressive values of slip parameters.http://www.sciencedirect.com/science/article/pii/S2212540X20300213Casson type nanofluidDarcy-Forchheimer modelMagnetohydrodynamic (MHD)Nonlinear stretching surfaceSlip-boundary conditions
spellingShingle Ghulam Rasool
Ali J. Chamkha
Taseer Muhammad
Anum Shafiq
Ilyas Khan
Darcy-Forchheimer relation in Casson type MHD nanofluid flow over non-linear stretching surface
Propulsion and Power Research
Casson type nanofluid
Darcy-Forchheimer model
Magnetohydrodynamic (MHD)
Nonlinear stretching surface
Slip-boundary conditions
title Darcy-Forchheimer relation in Casson type MHD nanofluid flow over non-linear stretching surface
title_full Darcy-Forchheimer relation in Casson type MHD nanofluid flow over non-linear stretching surface
title_fullStr Darcy-Forchheimer relation in Casson type MHD nanofluid flow over non-linear stretching surface
title_full_unstemmed Darcy-Forchheimer relation in Casson type MHD nanofluid flow over non-linear stretching surface
title_short Darcy-Forchheimer relation in Casson type MHD nanofluid flow over non-linear stretching surface
title_sort darcy forchheimer relation in casson type mhd nanofluid flow over non linear stretching surface
topic Casson type nanofluid
Darcy-Forchheimer model
Magnetohydrodynamic (MHD)
Nonlinear stretching surface
Slip-boundary conditions
url http://www.sciencedirect.com/science/article/pii/S2212540X20300213
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