4.7 Article

Magnetohydrodynamic flow of Cu-Fe3O4/H2O hybrid nanofluid with effect of viscous dissipation: dual similarity solutions

期刊

JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY
卷 143, 期 2, 页码 915-927

出版社

SPRINGER
DOI: 10.1007/s10973-020-09602-1

关键词

Cu-Fe3O4/H2O; Hybrid nanofluid; Dual solutions; Stability analysis; MHD

资金

  1. Universiti Utara Malaysia

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This study investigates the heat transfer characteristics, stability analysis, and multiple solutions of magnetohydrodynamic flow of hybrid nanofluid caused by nonlinear shrinking/stretching surface under high temperatures. It is found that the velocity of the hybrid nanofluid decreases in the first solution and increases in the second solution as both the magnetic and permeability coefficient parameters increase. Furthermore, dual solutions are found to exist only on the shrinking surface under specific parameter values in the case of suction.
This study shows multiple solutions, heat transfer characteristics, and stability analysis of the magnetohydrodynamic (MHD) flow of hybrid nanofluid caused by the nonlinear shrinking/stretching surface. To investigate the effects of high temperature on the porous surface, the energy dissipation function and porous term are considered in the momentum and energy equations. We used Tiwari and Das's model for nanofluid in which water is considered as a base fluid. A new kind of fluid is made in which two kinds of nanoparticles, namely copper (Cu) and iron oxide (Fe3O4), are considered. The system of ordinary differential equations (ODEs) is obtained by applying similarity transformations on the modeled of partial differential equations. Both shooting and Runge-Kutta fourth-order methods are employed to solve the resultant ODEs. The equations for stability analysis have been derived and then solved by using a three-stage Lobatto Ma formula for the smallest eigenvalue. It is noticed that the obtained value is in a good agreement with the previously published literature, hence validating the results of the shooting method. Furthermore, parametric studies also have been conducted and found that dual solutions only exist on the shrinking surface. In addition, it is also observed from the profile that dual solutions exist only for the case of suction where b(c1) = -3.0582, b(c2) = -3.0788, and b(c3) = -3.1249 are the critical values for the respective values of phi Fe3O4 = 0.5%, 5%, 1%. Moreover, the velocity of hybrid nanofluid decreases (increases) in the first (second) solution when both magnetic and permeability coefficient parameters are increased.

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