Publication | Open Access
Thermal and entropy analyses on buoyancy-driven flow of nanofluid inside a porous enclosure with two square cylinders: Finite element method
153
Citations
45
References
2021
Year
Magnetic PropertiesEngineeringFluid MechanicsFlow CellPorous BodyEntropy GenerationMagnetismFluid PropertiesMixed ConvectionTransport PhenomenaThermodynamicsNatural ConvectionMicrofluidicsMaterials ScienceThermal TransportNanofluidicsHeat TransferMultiphase FlowFinite Element MethodPorous EnclosureApplied PhysicsThermophysical PropertyThermal EngineeringBuoyancy-driven FlowThermo-fluid Systems
The present article reveals the study of heat transfer via buoyancy-driven flow and entropy generation of magnetic Fe3O4–H2O nanoliquid inside a porous enclosure using two square cylinders. The shape factor of diverse particle shapes may well be also considered. Numerical technique called FEM is implemented for the transformed governing equations. Results of Nusselt number, entropy generation, Bejan number along with the streamlines and the isotherms are obtained for disparate contributing parameters. Validation with earlier studies exhibits an excellent agreement in particular case and findings portray that entropy generation rises with growing Hartmann number and mounting Rayleigh number could overshoot the velocity gradient within the enclosure.
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