An empirical torque relation for supercritical flow between rotating cylinders

Author:

Donnelly R. J.,Simon N. J.

Abstract

An empirical relationship for the torque transmitted by fluid friction to an outer cylinder as a function of the angular velocity of the inner cylinder has been obtained by analysis of experimental data published by Wendt, Taylor and Donnelly. With one exception it is found that the torque G has the functional form $G = a \Omega^{-1}_1 + b\Omega ^{1 \cdot 36}_1,$ where Ω1 is the angular velocity of the inner cylinder and a and b are constants determined from the data. The formula applies to a range of values of Ω1 above the onset of instability extending to about 10 times the critical angular velocity. The experiments also show that the finite amplitude analysis recently advanced by Stuart gives the correct variation of torque over a short range above the critical speed. At speeds well beyond critical it is found that G varies approximately as Ω1.51, and that the variation of torque with gap width can be expressed as a simple power law with exponent about 0.31. In an appendix Dr G. K. Batchelor shows that these latter relations are consistent with the supposition that the flow is steady and consists of inviscid cores surrounded by boundary layers.

Publisher

Cambridge University Press (CUP)

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Reference11 articles.

1. Wendt, F. 1933 Ingen.-Arch. 4,577.

2. Taylor, G. I. 1936 Proc. Roy. Soc. A,157,546.

3. Chandrasekhar, S. 1954 Mathematica,1,5.

4. Schultz-Grunow, F. & Hein, H. 1956 Z. Flugwiss. 4, p.28.

5. Stuart, J. T. 1958 J. Fluid Mech. 4,1.

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