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    Item type:Publication,
    Erratum to: Effects of prescribed heat flux and transpiration on MHD axisymmetric flow impinging on stretching cylinder (Continuum Mech. Thermodyn., 10.1007/s00161-016-0519-9)
    (2016-11-01)
    Mabood, Fazle
    ;
    Lorenzini, Giulio
    ;
    ;
    Ibrahim, Sheikh Muhammad
    Unfortunately, one of the author names was incorrectly published in the original version and the same is corrected here. The original publication is corrected as well.
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    Item type:Publication,
    Homotopy analysis method for radiation and hydrodynamic-thermal slips effects on MHD flow and heat transfer impinging on stretching sheet
    (2018-01-01)
    Mabood, Fazle
    ;
    Lorenzini, Giulio
    ;
    ;
    Shateyi, Stanford
    This article deals with the analytical study of MHD flow and heat transfer over a permeable stretching sheet via homotopy analysis method (HAM). The effect of thermal radiation is included in the energy equation, while velocity and thermal slips are included in the boundary conditions. The governing boundary layer equations are transformed into a set of ordinary differential equations by means of similarity transformations. The effects of different parameters on the flow field and heat transfer characteristics are examined. The results obtained were shown to compare well with the numerical results and for some special cases with the published data available in the literature, which are in favorable agreement.
  • Some of the metrics are blocked by your 
    Item type:Publication,
    Effects of prescribed heat flux and transpiration on MHD axisymmetric flow impinging on stretching cylinder
    (2016-11-01)
    Mabood, Fazle
    ;
    Lorenzini, Giulio
    ;
    ;
    Ibrahim, Sheikh Muhammad
    A numerical treatment for axisymmetric flow and heat transfer due to a stretching cylinder under the influence of a uniform magnetic field and prescribed surface heat flux is presented. Numerical results are obtained for dimensionless velocity, temperature, skin friction coefficient and Nusselt number for several values of the suction/injection, magnetic and curvature parameters as well as the Prandtl number. The present study reveals that the controlling parameters have strong effects on the physical quantities of interest. It is seen that the magnetic field enhances the dimensionless temperature inside the thermal boundary layer, whereas it reduces the dimensionless velocity inside the hydrodynamic boundary layer. Heat transfer rate reduces, while the skin friction coefficient increases with magnetic field.