Javascript must be enabled to continue!
A Study of Soret-Dufour Effects on MHD Radiative Casson Nanofluid Flow Past an Inclined Surface with Chemical Reaction
View through CrossRef
This study investigates the impact of heat flux induced by concentration gradients (Dufour effects) and temperature gradients (Soret effects) on the boundary layer flow of a Casson nanofluid over an inclined expanding surface. It also considers heat and mass transfer coupled processes, Brownian motion, thermal radiation, chemical reactions, and thermophoresis. A dimensionless problem is formulated using similarity transformations and solved using the homotopy analysis method (HAM). Tables and graphs are employed to illustrate the correlations between influencing factors and physical quantities. It is observed that an increase in the inclination parameter leads to a reduction in skin friction but an enhancement in Nusselt and Sherwood numbers. The inclination parameter causes a decline in velocity, while the opposite trend is observed in the concentration field for the chemical reaction parameter. The Casson parameter decelerates the velocity and accelerates the distributions of temperature and concentration. The findings provide valuable insights into the flow patterns, temperature distribution, and concentration profiles within the system. This information holds significant relevance for designing and optimizing heat transfer systems, energy-efficient processes, and catalytic reactors involving Casson nanofluids. Our claims are validated by comparison with published literature, demonstrating a high degree of agreement.
Title: A Study of Soret-Dufour Effects on MHD Radiative Casson Nanofluid Flow Past an Inclined Surface with Chemical Reaction
Description:
This study investigates the impact of heat flux induced by concentration gradients (Dufour effects) and temperature gradients (Soret effects) on the boundary layer flow of a Casson nanofluid over an inclined expanding surface.
It also considers heat and mass transfer coupled processes, Brownian motion, thermal radiation, chemical reactions, and thermophoresis.
A dimensionless problem is formulated using similarity transformations and solved using the homotopy analysis method (HAM).
Tables and graphs are employed to illustrate the correlations between influencing factors and physical quantities.
It is observed that an increase in the inclination parameter leads to a reduction in skin friction but an enhancement in Nusselt and Sherwood numbers.
The inclination parameter causes a decline in velocity, while the opposite trend is observed in the concentration field for the chemical reaction parameter.
The Casson parameter decelerates the velocity and accelerates the distributions of temperature and concentration.
The findings provide valuable insights into the flow patterns, temperature distribution, and concentration profiles within the system.
This information holds significant relevance for designing and optimizing heat transfer systems, energy-efficient processes, and catalytic reactors involving Casson nanofluids.
Our claims are validated by comparison with published literature, demonstrating a high degree of agreement.
Related Results
The Cambridge Hundred Rolls
The Cambridge Hundred Rolls
The chapter provides new translations of these previously unpublished documents....
The Velocity, Temperature and Concentration Profiles for Triple Diffusive Casson Fluid Flow Subjected to the Soret-Dufour Parameters
The Velocity, Temperature and Concentration Profiles for Triple Diffusive Casson Fluid Flow Subjected to the Soret-Dufour Parameters
The triple-diffusive convection with the involvement of non-Newtonian fluid has many applications in the science and technology field, industrial processes, and also in research wo...
Soret-Dufour Effects on Heat and Mass Transfer of Newtonian Fluid Flow over the Inclined Sheet and Magnetic Field
Soret-Dufour Effects on Heat and Mass Transfer of Newtonian Fluid Flow over the Inclined Sheet and Magnetic Field
Newtonian fluid is ideal for lubrication purposes because the viscosity of this fluid remains as a function of the shear. Besides, the heat and mass transfer are an important study...
Isolation, characterization and semi-synthesis of natural products dimeric amide alkaloids
Isolation, characterization and semi-synthesis of natural products dimeric amide alkaloids
Isolation, characterization of natural products dimeric amide alkaloids from roots of the Piper chaba Hunter. The synthesis of these products using intermolecular [4+2] cycloaddit...
Magnetosphere simulations with ideal MHD, Hall MHD and the MHD with Adaptively Embedded Particle-in-Cell (MHD-AEPIC) models
Magnetosphere simulations with ideal MHD, Hall MHD and the MHD with Adaptively Embedded Particle-in-Cell (MHD-AEPIC) models
<p>The Magnetohydrodynamic with Embedded Particle-In-Cell (MHD-EPIC) model has been developed and applied successfully to Earth, Mercury, Mars and Ganymede magnetosph...
Entropy and heat transfer investigation of Casson–Maxwell, Casson–Jeffrey, and Casson–Oldroyd-B binary nanofluids in a parabolic trough solar collector: a comparative study
Entropy and heat transfer investigation of Casson–Maxwell, Casson–Jeffrey, and Casson–Oldroyd-B binary nanofluids in a parabolic trough solar collector: a comparative study
AbstractIn this paper, we compared copper-engine oil Casson–Maxwell, Casson–Jeffrey, and Casson–Oldroyd-B binary nanofluids in a parabolic trough solar collector. Using appropriate...
THERMAL RADIATION EFFECTS ON FRACTALS MHD FLOW WITH HEAT AND MASS TRANSFER OVER ROTATING POROUS DISK IN THE PRESENCE OF DUFOUR AND SORET USING AN ARTIFICIAL NEURAL NETWORK APPROACH
THERMAL RADIATION EFFECTS ON FRACTALS MHD FLOW WITH HEAT AND MASS TRANSFER OVER ROTATING POROUS DISK IN THE PRESENCE OF DUFOUR AND SORET USING AN ARTIFICIAL NEURAL NETWORK APPROACH
This paper aims to explore the new application of an intelligent numerical computational procedure based on neural networks backpropagated with the Levenberg–Marquardt scheme (NNBL...
Thermal Performance of Nanofluid in Automobile Radiator
Thermal Performance of Nanofluid in Automobile Radiator
The use of nanofluids as a coolant in automobile radiators is getting more attention for the radiator’s better performance. Continuous development in automotive industries has incr...

