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A Thin Conducting Liquid Film on a Spinning Disk in the Presence of a Magnetic Field: Dynamics and Stability

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TLDR
In this paper, the effects of a magnetic field on the dynamics of a thin nonuniform conducting film of an incompressible viscous fluid on a rotating disk has been considered, and a nonlinear evolution equation describing the shape of the film interface has been derived as a function of space and time and solved numerically.
Abstract
A theoretical analysis of the effects of a magnetic field on the dynamics of a thin nonuniform conducting film of an incompressible viscous fluid on a rotating disk has been considered A nonlinear evolution equation describing the shape of the film interface has been derived as a function of space and time and has been solved numerically The temporal evolution of the free surface of the fluid and the rate of retention of the liquid film on the spinning disk have been obtained for different values of Hartmann number M, evaporative mass flux parameter E, and Reynolds number Re The results show that the relative volume of the fluid retained on the spinning disk is enhanced by the presence of the magnetic field The stability characteristics of the evolution equation have been examined using linear theory For both zero and nonzero values of the nondimensional parameter describing the magnetic field, the results show that (a) the infinitesimal disturbances decay for small wave numbers and are transiently stable for larger wave numbers when there is either no mass transfer or there is evaporation from the film surface, and although the magnitude of the disturbance amplitude is larger when the magnetic field is present, it decays to zero earlier than for the case when the magnetic field is absent, and (b) when absorption is present at the film surface, the film exhibits three different domains of stability: disturbances of small wave numbers decay, disturbances of intermediate wave numbers grow transiently, and those of large wave numbers grow exponentially The range of stable wave numbers increases with increase in Hartmann number

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Citations
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Journal ArticleDOI

Impinging jet flow and hydraulic jump on a rotating disk

TL;DR: In this paper, the effects of rotation and inertia on the thin-film flow formed by a circular jet impinging on a rotating disk is analyzed theoretically and the location and height of the hydraulic jump are determined subject to the value of the thickness at the edge of the disk, which is established first for a stationary disk based on the capillary length, and then for a rotating disks using existing analyses and measurements in spin coating.
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Dynamic factors controlling carrier anchoring on vascular cells.

TL;DR: This article reviews experimental and modeling methods for determining the critical roles played by the various factors that control nanocarrier drug delivery to vascular endothelial cells.
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Vibration of spinning discs and powder formation in centrifugal atomization

TL;DR: In this article, a dynamic model of the atomizing disc as a spinning Kirchhoff plate is established with moving melt film treated as a moving load on the disc and as an unstable growing wave interacting with the surrounding air outside the disc.
References
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Journal ArticleDOI

Spin coating and air-jet blowing of thin viscous drops

TL;DR: In this article, the authors investigated the spreading of a finite-sized thin drop of incompressible Newtonian fluid on a planar substrate subjected to a jet of air blowing normally to the substrate.
Journal ArticleDOI

The thickness of aviscous liquid film on a rotating disk

TL;DR: In this article, various theoretical solutions including the author's for the thickness of a viscous liquid film on a rotating disk are presented in terms of two dimensionless parameters and are compared with experimental results.
Journal ArticleDOI

The development of nonlinear waves on the surface of a horizontally rotating thin liquid film

TL;DR: In this article, the authors considered the axisymmetric thin liquid film formed on a horizontally spinning disk and developed a theory to describe the evolution of localized disturbances imposed upon the steady film.
Journal ArticleDOI

Liquid-film flow regimes on a rotating surface

TL;DR: In this paper, the limits of the hydrodynamic regimes of a rotating disk were established and the authors analyzed and studied experimentally liquid flow on the disk and proved that the limit of hydrodynamics was not known.
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