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Dr. Mohamed Reda Ali Mohamed :: Publications:

Title:
Effects of homogeneous-heterogeneous and Lorentz forces on 3-D radiative magnetized cross nanofluid using two rotating disks
Authors: AssadAyubaZulqurnainSabiraSyed Zahir HussainShahaHafiz A.WahabaR.SadatbMohamed R.Alic
Year: 2021
Keywords: Homogeneous-heterogeneous chemical processLorentz force effectsMagnetized cross nanofluidRotatory disksNumerical solutions
Journal: International Communications in Heat and Mass Transfer
Volume: 130(2):105778
Issue: 130
Pages: 105778
Publisher: Elsevier
Local/International: International
Paper Link:
Full paper Not Available
Supplementary materials Not Available
Abstract:

Cross fluid is one of the important kinds of non-Newtonian fluid, which is most beneficial for the transport of heat and mass. The current model is to investigate the deformation in nanofluid at very high/low shear rate and has the capacity to characterize the properties of nanofluid in shear thinning/thickening region. The impacts of homogeneous-heterogeneous chemical process (HHCP) and Lorentz forces (LFs) on 3-D radiative magnetized Cross nanofluid using two stretching rotatory disks are also presented. HHCP is launched to depict the viscous dissipation, mass transport, joule heating, thermal radiation and heat transport. The nanofluid velocity is investigated in the inclined magnetic field based on the LFs. For the heat's transportation of time and space based on the non-uniform heat sink/source with convective boundary conditions is also indicated. The governed partial differential equations (PDEs) are converted into ordinary differential equations (ODEs) and numerically treated with the reputed bvp4c and Keller–Box schemes. Moreover, it is also observed that the increment in the rotation rate of disk, the enhancement in velocities of Cross nanofluid, the greater magnetic parameter drops sharply and escalation in temperature for strong LFs.

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