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The unsteady flow within a spinning cylinder

Published online by Cambridge University Press:  28 March 2006

E. H. Wedemeyer
Affiliation:
U.S.A. Ballistic Research Laboratories, Aberdeen Proving Ground, Aberdeen, Md.

Abstract

A theoretical analysis is given of the unsteady flow of a liquid within a cylinder of finite length started suddenly so as to spin about its axis. It is found that a secondary flow, caused by the end walls of the cylindrical container, has a strong effect on the generation of spin in the liquid. In the vicinity of the end walls the fluid motion is characterized by a boundary-layer flow, which can be either laminar or turbulent. The fluid within the boundary layers rotates faster than that at a large distance from the end walls, and therefore is thrown, by centrifugal forces, radially outwards. The radial outflow in the boundary layer creates a slow secondary motion within the spinning liquid. Due to the secondary flow, the transport of angular momentum from the walls to the interior is accomplished by convection rather than diffusion. A treatment is given for both laminar and turbulent end-wall boundary layers. The theoretical results are compared with experimental observations and good agreement is found.

Type
Research Article
Copyright
© 1964 Cambridge University Press

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References

Batchelor, G. K. 1951 Quart. J. Mech. Appl. Math. 4, 29.
Bödewadt, U. T. 1940 Z. angew. Math. Mech. 20, 241.
Cochran, W. G. 1934 Proc. Camb. Phil. Soc. 30, 365.
Karpov, B. G. 1962 Ballistic Research Laboratories Rep. no. 1171.
Ludwieg, H. 1951 Ingenieur-Archiv, 19, 296.
Mack, L. M. 1962 Jet Prop. Lab. Tech. Rep. 32-224.
Mack, L. M. 1963 Jet Prop. Lab. Tech. Rep. 32-366.
Rogers, M. H. & Lance, G. N. 1960 J. Fluid Mech. 7, 617.
Schlichting, H. 1958 Grenzschicht-Theorie. Karlsruhe: Verlag G. Braun.
Squire, H. B. 1953 Aero. Res. Counc., Lond., 16, 021.
Stewartson, K. 1958 Boundary Layer Research Symposium, Freiburg, pp. 5971. Berlin: Springer Verlag.
Stewartson, K. 1959 J. Fluid Mech. 5.
Stoller, H. M. 1960 Ballistic Research Laboratories Tech. Note 1355.
Thiriot, K. H. 1940 Z. angew. Math. Mech. 20, 1.
V. Kármán, T. 1921 Z. angew. Math. Mech. 1, 233.