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Interfacial instabilities in aluminium reduction cells

Published online by Cambridge University Press:  26 April 2006

A. D. Sneyd
Affiliation:
University of Waikato, Hamilton, New Zealand

Abstract

This paper extends the analysis of Sneyd (1985) on interfacial instabilities in aluminium reduction cells. The cell model consists of a plane fluid layer of relatively low electrical conductivity, sandwiched between an upper rigid wall and lower fluid layer, both of high conductivity. A steady current passes through the layers, and the magnetic field is assumed to be a linear function of position. The principal new effects introduced are (i) a horizontal current component in the aluminium; (ii) vertical magnetic field components, and vertical field gradients; (iii) an aluminium pool of finite depth; and (iv) uniform zeroth-order flow in the fluid layers, and mechanical dissipation. A dispersion relation for small-amplitude waves is derived and discussed. The destabilizing Kelvin—Helmholtz mechanism and electromagnetic forces compete with gravity, surface tension and mechanical dissipation. Electromagnetic destabilization is likely to occur in practice at wavelengths of 1 m or more, and becomes more intense with decreasing layer depths. The most dangerous mechanism appears to be driven by vertical gradients of the horizontal field.

Type
Research Article
Copyright
© 1992 Cambridge University Press

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References

Fraser, K. J., Billinghurst, D., Chen, K. L. & Keniry, J. T. 1989 Some applications of mathematical modelling of electric current distributions in Hall—Héroult cells. Light Metals, pp. 219226.Google Scholar
Lympany, S. D., Evans, J. W. & Moreau, R. 1983 Magnetohydrodynamic effects in aluminium reduction cells. In Proc. IUTAM Symp. on Metallurgical Applications of Magnetohydrodynamics, Cambridge, 1982, pp. 1523. London: The Metals Society.
Moreau, R. J. & Ziegler, D. 1986 Stability of aluminium cells: a new approach. Light Metals, pp. 359364.Google Scholar
Murty, G. S. 1961 Instability of a conducting fluid slab carrying uniform current in the presence of a homogeneous magnetic field. Ark. Fys. 19, 495.Google Scholar
Pigny, S. & Moreau, R. 1991 Stability of fluid interfaces carrying an electric current in the presence of a magnetic field. Euro. J. Mech. B (to appear).Google Scholar
Potočnik, V. 1989 Modelling of metal-bath interface waves in Hall—Héroult cells using ESTER/PHOENICS. Light Metals, pp. 227235.Google Scholar
Sneyd, A. D. 1985 Stability of fluid layers carrying a normal electric current. J. Fluid Mech. 156, 223236 (referred to herein as paper I).Google Scholar
Urata, N. 1985 Magnetics and metal pad instability. Light Metals, pp. 581589.Google Scholar