Litcius/Paper detail

Effect of Thermal Radiation and Variable Viscosity on Bioconvective and Thermal Stability of Non-Newtonian Nanofluids under Bidirectional Porous Oscillating Regime

Lioua Kolsi, Kamel Al‐Khaled, Sami Ullah Khan, Nidhal Ben Khedher

2023Mathematics14 citationsDOIOpen Access PDF

Abstract

The bioconvective flow of a Jeffrey fluid conveying tiny particles under the effect of an oscillating stretched bidirectional surface is considered in this paper. The effects of thermal radiation and a porous medium are also investigated. The Cattaneo–Christov diffusion theories are used to analyze the heat and mass transfer phenomena. The activation energy effects are included in the concentration equation. The solved dimensionless equations system is established, based on non-dimensional variables. The analytical findings are evaluated using the homotopic analysis technique. The convergence of solutions is ensured. The results are validated by already available published findings and a good concordance is encountered. The fundamental physical aspect of flow parameters is graphically evaluated. The main results reveal that the velocity is reduced by increasing the permeability of the porous medium. An increase in the temperature occurs when the viscosity of the fluid is varied. The obtained results can be useful in thermal systems, energy production, heat transfer devices, solar systems, biofuels, fertilizers, etc.

Topics & Concepts

NanofluidMechanicsPorous mediumViscosityHeat transferThermodynamicsMaterials scienceThermal radiationThermalNewtonian fluidMass transferDimensionless quantityFluid dynamicsPorosityPhysicsComposite materialNanofluid Flow and Heat TransferHeat Transfer MechanismsHeat and Mass Transfer in Porous Media