The Experts below are selected from a list of 106839 Experts worldwide ranked by ideXlab platform
S F Ahmmed - One of the best experts on this subject based on the ideXlab platform.
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mhd effect on unsteady Flow of tangent hyperbolic nano Fluid past a moving cylinder with chemical reaction
SN Applied Sciences, 2020Co-Authors: Partha Protim Gharami, Sk Rezaerabbi, S M Arifuzzaman, Md Shakhaoath Khan, Tanmoy Sarkar, S F AhmmedAbstract:This study presents the exploration of unsteady magnetohydrodynamic (MHD) free convection Flow of tangent hyperbolic nano-Fluid Flow on a moving cylinder with Brownian motion and thermophoresis effects. The current Flow analysis yields nonlinear partial differential equations. The governing equations such as continuity, momentum, temperature and concentration are converted into dimensionless form and then solved numerically by adopting explicit finite difference method where Compaq Visual FORTRAN 6.6.a was also used for simulating the Fluid Flow System. The numerical outcomes are showed graphically to understand the result clearly. For the accurateness of the numerical technique a stability and convergence analysis was carried out. The aim was to illustrate the physical impacts of chemical reaction parameter, thermal radiation and viscous dissipation on various Fluid fields along with the advanced visualization through streamlines. By comparing with the previous studies it was found that this Fluid influenced the mass and heat properties more significantly rather than the other Fluid. Additionally, this model predicts the shear thinning attitude significantly and describes the blood Flow accurately. It has also applications in biological sciences, bio-engineering maneuver, and petroleum industries. Eventually the obtained outcomes were validated with previously published articles.
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explicit finite difference analysis of an unsteady mhd Flow of a chemically reacting casson Fluid past a stretching sheet with brownian motion and thermophoresis effects
Journal of King Saud University - Science, 2020Co-Authors: Sk Rezaerabbi, S M Arifuzzaman, Md Shakhaoath Khan, Tanmoy Sarkar, S F AhmmedAbstract:Abstract This study intends to elaborate the heat and mass transfer analysis of Casson nanoFluid Flow past a stretching sheet together with magnetohydrodynamics (MHD), thermal radiation and chemical reaction effects. The boundary layer approximations established the governing equations, i.e., time-subservient momentum, energy and diffusion balance equations. An explicit finite difference scheme was implemented as a numerical technique where Compaq Visual Fortran 6.6.a programming code is also developed for simulating the Fluid Flow System. In order to accurateness of the numerical technique, a stability and convergence analysis was carried out where the System was found converged at Prandtl number, Pr ≥ 0.062 and Lewis number, Le ≥ 0.025 when τ = 0.0005, ΔX = 0.8 and ΔY = 0.2. The non-dimensional outcomes are apprehended here which rely on various physical parameters. The impression of these various physical parameters on momentum and thermal boundary layers along with concentration profiles are discussed and displayed graphically. In addition, the impact of System parameters on Cf, Nu and Sh profiles with streamlines and isothermal lines are also discussed.
Sk Rezaerabbi - One of the best experts on this subject based on the ideXlab platform.
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mhd effect on unsteady Flow of tangent hyperbolic nano Fluid past a moving cylinder with chemical reaction
SN Applied Sciences, 2020Co-Authors: Partha Protim Gharami, Sk Rezaerabbi, S M Arifuzzaman, Md Shakhaoath Khan, Tanmoy Sarkar, S F AhmmedAbstract:This study presents the exploration of unsteady magnetohydrodynamic (MHD) free convection Flow of tangent hyperbolic nano-Fluid Flow on a moving cylinder with Brownian motion and thermophoresis effects. The current Flow analysis yields nonlinear partial differential equations. The governing equations such as continuity, momentum, temperature and concentration are converted into dimensionless form and then solved numerically by adopting explicit finite difference method where Compaq Visual FORTRAN 6.6.a was also used for simulating the Fluid Flow System. The numerical outcomes are showed graphically to understand the result clearly. For the accurateness of the numerical technique a stability and convergence analysis was carried out. The aim was to illustrate the physical impacts of chemical reaction parameter, thermal radiation and viscous dissipation on various Fluid fields along with the advanced visualization through streamlines. By comparing with the previous studies it was found that this Fluid influenced the mass and heat properties more significantly rather than the other Fluid. Additionally, this model predicts the shear thinning attitude significantly and describes the blood Flow accurately. It has also applications in biological sciences, bio-engineering maneuver, and petroleum industries. Eventually the obtained outcomes were validated with previously published articles.
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explicit finite difference analysis of an unsteady mhd Flow of a chemically reacting casson Fluid past a stretching sheet with brownian motion and thermophoresis effects
Journal of King Saud University - Science, 2020Co-Authors: Sk Rezaerabbi, S M Arifuzzaman, Md Shakhaoath Khan, Tanmoy Sarkar, S F AhmmedAbstract:Abstract This study intends to elaborate the heat and mass transfer analysis of Casson nanoFluid Flow past a stretching sheet together with magnetohydrodynamics (MHD), thermal radiation and chemical reaction effects. The boundary layer approximations established the governing equations, i.e., time-subservient momentum, energy and diffusion balance equations. An explicit finite difference scheme was implemented as a numerical technique where Compaq Visual Fortran 6.6.a programming code is also developed for simulating the Fluid Flow System. In order to accurateness of the numerical technique, a stability and convergence analysis was carried out where the System was found converged at Prandtl number, Pr ≥ 0.062 and Lewis number, Le ≥ 0.025 when τ = 0.0005, ΔX = 0.8 and ΔY = 0.2. The non-dimensional outcomes are apprehended here which rely on various physical parameters. The impression of these various physical parameters on momentum and thermal boundary layers along with concentration profiles are discussed and displayed graphically. In addition, the impact of System parameters on Cf, Nu and Sh profiles with streamlines and isothermal lines are also discussed.
Md Shakhaoath Khan - One of the best experts on this subject based on the ideXlab platform.
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mhd effect on unsteady Flow of tangent hyperbolic nano Fluid past a moving cylinder with chemical reaction
SN Applied Sciences, 2020Co-Authors: Partha Protim Gharami, Sk Rezaerabbi, S M Arifuzzaman, Md Shakhaoath Khan, Tanmoy Sarkar, S F AhmmedAbstract:This study presents the exploration of unsteady magnetohydrodynamic (MHD) free convection Flow of tangent hyperbolic nano-Fluid Flow on a moving cylinder with Brownian motion and thermophoresis effects. The current Flow analysis yields nonlinear partial differential equations. The governing equations such as continuity, momentum, temperature and concentration are converted into dimensionless form and then solved numerically by adopting explicit finite difference method where Compaq Visual FORTRAN 6.6.a was also used for simulating the Fluid Flow System. The numerical outcomes are showed graphically to understand the result clearly. For the accurateness of the numerical technique a stability and convergence analysis was carried out. The aim was to illustrate the physical impacts of chemical reaction parameter, thermal radiation and viscous dissipation on various Fluid fields along with the advanced visualization through streamlines. By comparing with the previous studies it was found that this Fluid influenced the mass and heat properties more significantly rather than the other Fluid. Additionally, this model predicts the shear thinning attitude significantly and describes the blood Flow accurately. It has also applications in biological sciences, bio-engineering maneuver, and petroleum industries. Eventually the obtained outcomes were validated with previously published articles.
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explicit finite difference analysis of an unsteady mhd Flow of a chemically reacting casson Fluid past a stretching sheet with brownian motion and thermophoresis effects
Journal of King Saud University - Science, 2020Co-Authors: Sk Rezaerabbi, S M Arifuzzaman, Md Shakhaoath Khan, Tanmoy Sarkar, S F AhmmedAbstract:Abstract This study intends to elaborate the heat and mass transfer analysis of Casson nanoFluid Flow past a stretching sheet together with magnetohydrodynamics (MHD), thermal radiation and chemical reaction effects. The boundary layer approximations established the governing equations, i.e., time-subservient momentum, energy and diffusion balance equations. An explicit finite difference scheme was implemented as a numerical technique where Compaq Visual Fortran 6.6.a programming code is also developed for simulating the Fluid Flow System. In order to accurateness of the numerical technique, a stability and convergence analysis was carried out where the System was found converged at Prandtl number, Pr ≥ 0.062 and Lewis number, Le ≥ 0.025 when τ = 0.0005, ΔX = 0.8 and ΔY = 0.2. The non-dimensional outcomes are apprehended here which rely on various physical parameters. The impression of these various physical parameters on momentum and thermal boundary layers along with concentration profiles are discussed and displayed graphically. In addition, the impact of System parameters on Cf, Nu and Sh profiles with streamlines and isothermal lines are also discussed.
S M Arifuzzaman - One of the best experts on this subject based on the ideXlab platform.
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mhd effect on unsteady Flow of tangent hyperbolic nano Fluid past a moving cylinder with chemical reaction
SN Applied Sciences, 2020Co-Authors: Partha Protim Gharami, Sk Rezaerabbi, S M Arifuzzaman, Md Shakhaoath Khan, Tanmoy Sarkar, S F AhmmedAbstract:This study presents the exploration of unsteady magnetohydrodynamic (MHD) free convection Flow of tangent hyperbolic nano-Fluid Flow on a moving cylinder with Brownian motion and thermophoresis effects. The current Flow analysis yields nonlinear partial differential equations. The governing equations such as continuity, momentum, temperature and concentration are converted into dimensionless form and then solved numerically by adopting explicit finite difference method where Compaq Visual FORTRAN 6.6.a was also used for simulating the Fluid Flow System. The numerical outcomes are showed graphically to understand the result clearly. For the accurateness of the numerical technique a stability and convergence analysis was carried out. The aim was to illustrate the physical impacts of chemical reaction parameter, thermal radiation and viscous dissipation on various Fluid fields along with the advanced visualization through streamlines. By comparing with the previous studies it was found that this Fluid influenced the mass and heat properties more significantly rather than the other Fluid. Additionally, this model predicts the shear thinning attitude significantly and describes the blood Flow accurately. It has also applications in biological sciences, bio-engineering maneuver, and petroleum industries. Eventually the obtained outcomes were validated with previously published articles.
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explicit finite difference analysis of an unsteady mhd Flow of a chemically reacting casson Fluid past a stretching sheet with brownian motion and thermophoresis effects
Journal of King Saud University - Science, 2020Co-Authors: Sk Rezaerabbi, S M Arifuzzaman, Md Shakhaoath Khan, Tanmoy Sarkar, S F AhmmedAbstract:Abstract This study intends to elaborate the heat and mass transfer analysis of Casson nanoFluid Flow past a stretching sheet together with magnetohydrodynamics (MHD), thermal radiation and chemical reaction effects. The boundary layer approximations established the governing equations, i.e., time-subservient momentum, energy and diffusion balance equations. An explicit finite difference scheme was implemented as a numerical technique where Compaq Visual Fortran 6.6.a programming code is also developed for simulating the Fluid Flow System. In order to accurateness of the numerical technique, a stability and convergence analysis was carried out where the System was found converged at Prandtl number, Pr ≥ 0.062 and Lewis number, Le ≥ 0.025 when τ = 0.0005, ΔX = 0.8 and ΔY = 0.2. The non-dimensional outcomes are apprehended here which rely on various physical parameters. The impression of these various physical parameters on momentum and thermal boundary layers along with concentration profiles are discussed and displayed graphically. In addition, the impact of System parameters on Cf, Nu and Sh profiles with streamlines and isothermal lines are also discussed.
Tanmoy Sarkar - One of the best experts on this subject based on the ideXlab platform.
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mhd effect on unsteady Flow of tangent hyperbolic nano Fluid past a moving cylinder with chemical reaction
SN Applied Sciences, 2020Co-Authors: Partha Protim Gharami, Sk Rezaerabbi, S M Arifuzzaman, Md Shakhaoath Khan, Tanmoy Sarkar, S F AhmmedAbstract:This study presents the exploration of unsteady magnetohydrodynamic (MHD) free convection Flow of tangent hyperbolic nano-Fluid Flow on a moving cylinder with Brownian motion and thermophoresis effects. The current Flow analysis yields nonlinear partial differential equations. The governing equations such as continuity, momentum, temperature and concentration are converted into dimensionless form and then solved numerically by adopting explicit finite difference method where Compaq Visual FORTRAN 6.6.a was also used for simulating the Fluid Flow System. The numerical outcomes are showed graphically to understand the result clearly. For the accurateness of the numerical technique a stability and convergence analysis was carried out. The aim was to illustrate the physical impacts of chemical reaction parameter, thermal radiation and viscous dissipation on various Fluid fields along with the advanced visualization through streamlines. By comparing with the previous studies it was found that this Fluid influenced the mass and heat properties more significantly rather than the other Fluid. Additionally, this model predicts the shear thinning attitude significantly and describes the blood Flow accurately. It has also applications in biological sciences, bio-engineering maneuver, and petroleum industries. Eventually the obtained outcomes were validated with previously published articles.
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explicit finite difference analysis of an unsteady mhd Flow of a chemically reacting casson Fluid past a stretching sheet with brownian motion and thermophoresis effects
Journal of King Saud University - Science, 2020Co-Authors: Sk Rezaerabbi, S M Arifuzzaman, Md Shakhaoath Khan, Tanmoy Sarkar, S F AhmmedAbstract:Abstract This study intends to elaborate the heat and mass transfer analysis of Casson nanoFluid Flow past a stretching sheet together with magnetohydrodynamics (MHD), thermal radiation and chemical reaction effects. The boundary layer approximations established the governing equations, i.e., time-subservient momentum, energy and diffusion balance equations. An explicit finite difference scheme was implemented as a numerical technique where Compaq Visual Fortran 6.6.a programming code is also developed for simulating the Fluid Flow System. In order to accurateness of the numerical technique, a stability and convergence analysis was carried out where the System was found converged at Prandtl number, Pr ≥ 0.062 and Lewis number, Le ≥ 0.025 when τ = 0.0005, ΔX = 0.8 and ΔY = 0.2. The non-dimensional outcomes are apprehended here which rely on various physical parameters. The impression of these various physical parameters on momentum and thermal boundary layers along with concentration profiles are discussed and displayed graphically. In addition, the impact of System parameters on Cf, Nu and Sh profiles with streamlines and isothermal lines are also discussed.