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The Evolution of a Horizontal Scale for Oscillatory Magnetoconvection

Published online by Cambridge University Press:  25 April 2016

J.O. Murphy
Affiliation:
Department of Mathematics, Monash University Clayton, Vic. 3168
J.M. Lopez
Affiliation:
Aerodynamics Division, Aeronautical Research Laboratories, Port Melbourne, Vic. 3207

Abstract

Oscillatory convective motions have been observed in the umbrae of sunspots and, in the past, the linear theory of overstability has been used for sunspot models. Here a non-linear model for oscillatory convection has been used to investigate the possibility of a preferred horizontal cell size for these motions, in the presence of a magnetic field.

The integration forward in time, from the conductive state, of the non-linear multimode equations governing magnetoconvection when the magnetic Prandtl number is less than one portrays a complex interaction between the evolving magnetic and vertical velocity horizontal scales. Preferred horizontal scales for the convective cells have been established by identifying the modes that substantially contribute to the overall convective heat transport. All other modes, although initially perturbed, in time essentially decay to zero through self interaction.

Type
Theoretical
Copyright
Copyright © Astronomical Society of Australia 1989

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References

Chandrasekhar, S., 1961, Hydrodrodynamic and Hydrodromagnetic Stability, Oxford Univ. Press.Google Scholar
Danielson, R.E., 1961, Astrophys. J., 134, 289.Google Scholar
Danielson, R.E., 1963, Stellar and Solar Magnetic Fields, I.A.U. Symposium, No. 22, 314.Google Scholar
Giovanelli, R.G., 1972, Solar Physics, 27, 71.Google Scholar
Knobloch, E., and Weiss, N.O., 1984, Mon. Not. R. Astron. Soc. 207, 203.Google Scholar
Murphy, J.O., and Lopez, J.M., 1987, Proc. Astron. Soc. Aust., 7, 112.Google Scholar
Nakagawa, Y., 1959, Proc. R. Soc. London A, 249, 138.Google Scholar
Van der Borght, R., 1974, Mon. Not. R. Astron. Soc, 166, 191.Google Scholar