FUNDAMENTAL AREAS OF PHENOMENOLOGY(INCLUDING APPLICATIONS) |
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Viscous Slip MHD Flow over a Moving Sheet with an Arbitrary Surface Velocity |
Tiegang Fang**, Fujun Wang |
Mechanical and Aerospace Engineering Department, North Carolina State University, Raleigh 27695, USA
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Cite this article: |
Tiegang Fang, Fujun Wang 2018 Chin. Phys. Lett. 35 104701 |
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Abstract The magnetohydrodynamic (MHD) flow induced by a stretching or shrinking sheet under slip conditions is studied. Analytical solutions based on the boundary layer assumption are obtained in a closed form and can be applied to a flow configuration with any arbitrary velocity distributions. Seven typical sheet velocity profiles are employed as illustrating examples. The solutions to the slip MHD flow are derived from the general solution and discussed in detail. Different from self-similar boundary layer flows, the flows studied in this work have solutions in explicit analytical forms. However, the current flows require special mass transfer at the wall, which is determined by the moving velocity of the sheet. The effects of the slip parameter, the mass transfer at the wall, and the magnetic field on the flow are also demonstrated.
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Received: 17 June 2018
Published: 15 September 2018
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PACS: |
47.10.ad
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(Navier-Stokes equations)
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47.15.Cb
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(Laminar boundary layers)
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52.30.Cv
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(Magnetohydrodynamics (including electron magnetohydrodynamics))
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