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Activation Energy Impact on Flow of AA7072-AA7075/Water-Based Hybrid Nanofluid through a Cone, Wedge and Plate

M. B. RekhaDepartment of Studies in Mathematics, Davangere University, Davangere 577002, IndiaIoannis E. SarrisDepartment of Mechanical Engineering, University of West Attica, 12244 Athens, GreeceJ. K. MadhukeshDepartment of Studies in Mathematics, Davangere University, Davangere 577002, IndiaK. R. RaghunathaDepartment of Studies in Mathematics, Davangere University, Davangere 577002, IndiaB. C. PrasannakumaraDepartment of Studies in Mathematics, Davangere University, Davangere 577002, India
2022en
ABI

Аннотация

The present research investigates the effect of a heat source/sink on nanofluid flow through a cone, wedge, and plate when using a suspension of aluminium alloys (AA7072 and AA7075) as nanoparticles in base fluid water. The activation energy and porous material are also considered in the modelling. Using similarity transformations, the modelling equations were converted into an ordinary differential equation (ODEs) system. The Runge Kutta Fehlberg 45 fourth fifth-order (RKF 45) technique and shooting approach were used to numerically solve these equations. The influence of essential aspects on flow fields, heat, and mass transfer rates was studied and addressed using graphical representations. The outcome reveals that the case of fluid flow past a plate shows improved heat transfer for augmented heat source/sink parameter values than the cases for fluid flow past a cone and wedge does. Furthermore, we observed the least heat transfer for the case of fluid flow past the cone. The mass transfer for the case of fluid flow past the cone increased more slowly for growing activation energy parameter values than in the other cases. Moreover, we observed higher mass transfer rates for the case of fluid flow past the plate. The augmented values of the heat source/sink parameter decayed the heat transfer rate in all three flow cases.

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