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An MHD Fluid Flow over a Porous Stretching/Shrinking Sheet with Slips and Mass Transpiration
by
Sarris, Ioannis E.
, Mahabaleshwar, U. S.
, Vishalakshi, A. B.
in
Biot number
/ Boundary conditions
/ Darcy number
/ exact solution
/ Exact solutions
/ Experiments
/ Extrusion
/ Fluid dynamics
/ Fluid flow
/ Fluid mechanics
/ Gamma function
/ Graphene
/ Graphical representations
/ Heat
/ Industrial applications
/ Magnetic fields
/ Magnetic properties
/ Magnetohydrodynamics
/ Mathematical analysis
/ MHD
/ nanofluid
/ Nanoparticles
/ Newtonian fluids
/ Parameters
/ Physical properties
/ Porous materials
/ porous sheet
/ Prandtl number
/ Radiation
/ Skin friction
/ Stretching
/ Temperature profiles
/ thermal efficiency
/ Thermal radiation
/ Thermodynamic efficiency
/ Three dimensional flow
/ three-dimensional
/ Transpiration
/ Velocity
2022
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An MHD Fluid Flow over a Porous Stretching/Shrinking Sheet with Slips and Mass Transpiration
by
Sarris, Ioannis E.
, Mahabaleshwar, U. S.
, Vishalakshi, A. B.
in
Biot number
/ Boundary conditions
/ Darcy number
/ exact solution
/ Exact solutions
/ Experiments
/ Extrusion
/ Fluid dynamics
/ Fluid flow
/ Fluid mechanics
/ Gamma function
/ Graphene
/ Graphical representations
/ Heat
/ Industrial applications
/ Magnetic fields
/ Magnetic properties
/ Magnetohydrodynamics
/ Mathematical analysis
/ MHD
/ nanofluid
/ Nanoparticles
/ Newtonian fluids
/ Parameters
/ Physical properties
/ Porous materials
/ porous sheet
/ Prandtl number
/ Radiation
/ Skin friction
/ Stretching
/ Temperature profiles
/ thermal efficiency
/ Thermal radiation
/ Thermodynamic efficiency
/ Three dimensional flow
/ three-dimensional
/ Transpiration
/ Velocity
2022
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An MHD Fluid Flow over a Porous Stretching/Shrinking Sheet with Slips and Mass Transpiration
by
Sarris, Ioannis E.
, Mahabaleshwar, U. S.
, Vishalakshi, A. B.
in
Biot number
/ Boundary conditions
/ Darcy number
/ exact solution
/ Exact solutions
/ Experiments
/ Extrusion
/ Fluid dynamics
/ Fluid flow
/ Fluid mechanics
/ Gamma function
/ Graphene
/ Graphical representations
/ Heat
/ Industrial applications
/ Magnetic fields
/ Magnetic properties
/ Magnetohydrodynamics
/ Mathematical analysis
/ MHD
/ nanofluid
/ Nanoparticles
/ Newtonian fluids
/ Parameters
/ Physical properties
/ Porous materials
/ porous sheet
/ Prandtl number
/ Radiation
/ Skin friction
/ Stretching
/ Temperature profiles
/ thermal efficiency
/ Thermal radiation
/ Thermodynamic efficiency
/ Three dimensional flow
/ three-dimensional
/ Transpiration
/ Velocity
2022
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An MHD Fluid Flow over a Porous Stretching/Shrinking Sheet with Slips and Mass Transpiration
Journal Article
An MHD Fluid Flow over a Porous Stretching/Shrinking Sheet with Slips and Mass Transpiration
2022
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Overview
In the present paper, an MHD three-dimensional non-Newtonian fluid flow over a porous stretching/shrinking sheet in the presence of mass transpiration and thermal radiation is examined. This problem mainly focusses on an analytical solution; graphene water is immersed in the flow of a fluid to enhance the thermal efficiency. The given non-linear PDEs are mapped into ODEs via suitable transformations, then the solution is obtained in terms of incomplete gamma function. The momentum equation is analyzed, and to derive the mass transpiration analytically, this mass transpiration is used in the heat transfer analysis and to find the analytical results with a Biot number. Physical significance parameters, including volume fraction, skin friction, mass transpiration, and thermal radiation, can be analyzed with the help of graphical representations. We indicate the unique solution at stretching sheet and multiple solution at shrinking sheet. The physical scenario can be understood with the help of different physical parameters, namely a Biot number, magnetic parameter, inverse Darcy number, Prandtl number, and thermal radiation; these physical parameters control the analytical results. Graphene nanoparticles are used to analyze the present study, and the value of the Prandtl number is fixed to 6.2. The graphical representations help to discuss the results of the present work. This problem is used in many industrial applications such as Polymer extrusion, paper production, metal cooling, glass blowing, etc. At the end of this work, we found that the velocity and temperature profile increases with the increasing values of the viscoelastic parameter and solid volume fraction; additionally, efficiency is increased for higher values of thermal radiation.
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