Flow around a rotating, semi-infinite cylinder in an axial stream
Author(s) -
Srikanth Derebail Muralidhar,
Benoı̂t Pier,
Julian Scott,
Rama Govindarajan
Publication year - 2016
Publication title -
proceedings of the royal society a mathematical physical and engineering sciences
Language(s) - English
Resource type - Journals
eISSN - 1471-2946
pISSN - 1364-5021
DOI - 10.1098/rspa.2015.0850
Subject(s) - cylinder , boundary layer , mechanics , reynolds number , rotation (mathematics) , physics , flow (mathematics) , jet (fluid) , radius , geometry , asymptotic expansion , potential flow around a circular cylinder , logarithm , mathematics , boundary (topology) , classical mechanics , turbulence , mathematical analysis , computer security , computer science
International audienceThis paper concerns steady, high-Reynolds-number flow around a semi-infinite, rotating cylinder placed in an axial stream and uses boundary-layer type of equations which apply even when the boundary-layer thickness is comparable to the cylinder radius, as indeed it is at large enough downstream distances. At large rotation rates, it is found that a wall jet appears over a certain range of downstream locations. This jet strengthens with increasing rotation, but first strengthens then weakens as downstream distance increases, eventually disappearing, so the flow recovers a profile qualitatively similar to a classical boundary layer. The asymptotic solution at large streamwise distances is obtained as an expansion in inverse powers of the logarithm of the distance. It is found that the asymptotic radial and axial velocity components are the same as for a non-rotating cylinder, to all orders in this expansion
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