Stefan blowing effect on bioconvective flow of nanofluid over a solid rotating stretchable disk

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2016
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Abstract
A mathematical model for the unsteady forced convection over rotating stretchable disk in nanofluid containing micro-organisms and taking into account Stefan blowing effect is presented theoretically and numerically. Appropriate transformations are used to transform the governing boundary layer equations into non-linear ordinary differential equations, before being solved numerically using the Runge-Kutta-Fehlberg method. The effect of the governing parameters on the dimensionless velocities, temperature, nanoparticle volume fraction (concentration), density of motile microorganisms as well as on the local skin friction, local Nusselt, Sherwood number and motile microorganisms numbers are thoroughly examined via graphs. It is observed that the Stefan blowing increases the local skin friction and reduces the heat transfer, mass transfer and microorganism transfer rates. The numerical results are in good agreement with those obtained from previous literature. Physical quantities results from this investigation show that the effects of higher disk stretching strength and suction case provides a good medium to enhance the heat, mass and microorganisms transfer compared to blowing case.
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latiff2016stefanpropulsion Use this key to autocite in the manuscript while using SciMatic Manuscript Manager or Thesis Manager
Authors Latiff, N.A.;Uddin, M.J.;Ismail, A.I. Md.;
Journal propulsion and power research
Year 2016
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