On the convective motions in different geophysical media
Main Article Content
Abstract
From the unified point of view, this paper discusses some known and new results of theoretical and experimental investigations of slow mesoscale convective motions in the neutral and conductive gas and liquid mediums, and a mantle. Specific thermo-hydrodynamic regime conditions of the considered mediums were taken into account for determination of onset of convection and the vertical velocity of arisen heat thermal.
Article Details
References
Rumford C. On the propagation of heat in fluids. Complete Works, American
Academy of Arts and Sciences, 1870, v. 1, p. 239.
Thomson J. T. On a changing tessellated structure in certain liquids. Proc. Glasgow
Philos. Soc, 1881, v. 2.
Bénard M. Les tourbillons cellularies dans une nappe liquide. Revue General de
Sciences, 1900, v. 12, pp. 1261-1309.
Bénard M. Les tourbillons cellularies dans une nappe liquide transportant de la chaleur
par convection en regime permanent. Ann. de Chimie et de Physique. 1901, v. 23, p. 62.
Rayleigh O. M. On convection currents in a horizontal layer of fluid when the higher
temperature is on the under side. Philos. Mag. and J. Sci., 1916, v. 32, N192, pp. 529-546.
Stommel H., Arons A., Blanchard D. An oceanographical curiosity: the perpetual
salt fountain. Deep-Sea Res., 1956, v. 3, N 2, pp. 152-153.
Veliev A. A. Hydrodynamic theory of double-convective diffusion. Baku: University
“Odlar Yurdu”, 1997, 279 p.
Bulgakov N. P. Convection in the ocean. M.: Nauka, 1975, 272 p.
Chandrasekhar S. Hydrodynamic and hydromagnetic stability. Clarendon Press,
Oxford, England, 1961, 652 p.
Joseph D. D. Stability of fluid motions. Springer-Verlag, Berlin-Heidelberg-New
York, 1976 ; M: Mir, 1981, 638 p.
Golitsyn G. S. Energy of convection. Non-linear waves: Stochasticity and Turbulence.
Gorky: AN SSSR, IPF, 1980, pp. 131-139.
Golitsyn G. S. Study of convection with geophysical application and analogues. L.:
Gidrometeoizdat, 1981.
Golitsyn G. S. DAN SSSR, 1978, v. 240, N 5, p. 1054.
Jellinek A. M., Manga M. Links between long-lived hot spots, mantle plumes, ,
and plate tectonics. Reviews of Geophysics, 2004, v. 42, RG3002, pp. 1-35.
Gvelesiani A. I. On the convective motions in different layers of atmosphere. J. Georgian
Geophys. Soc., 2010, v. 14B, pp. 161-182.
Barenblatt G. I. Some phenomena of turbulence in liquid with strongly stable stratification.
Stochasticity and Turbulence. Gorky: AN SSSR, IPF, 1980, pp. 89-114.
Fyodorov K. N. Light thermohaline structure of the ocean waters. L.: Gidrometeoizdat.
, 184 p.
Phillips O. M. Energy loss mechanisms from low mode waves. Soviet-American Conference on the
Internal Waves. Novosibirsk, December, 1976.
Chashechkin Yu. D. Stochasticity of convective flows in a stratified liquid. Non-linear
waves: Stochasticity and Turbulence. Gorky: AN SSSR, IPF, 1980, pp. 131-139.
Busse F. H. Rep. Progr. Phys., 1978, v. 41, p. 1929.
Кутателадзе С. С. Основы теории теплообмена. Новосибирск: Наука, 1970
Bennett C. O., Myers J. E. Momentum, heat and mass transfer. M.: Nedra, 1966, Ch. 26,
p.
Cazenave A. and Nerem R. S. Present-day sea level chance: observations and causes. Rev.
Geophys., 2004, v. 42, RG3001, doi:10.1029/2003RG00139.
Forte A. M. and Peltier W. R. Viscous flow models of global geophysical observables: 1.
Forward problems. J. Geophys. Res., 1991, v. 96(B12), pp. 20, 131-20,159.
Hager B. H. and Clayton R. W. Constraints on the structure of mantle convection using
seismic observations, flow models and the geoid. In Mental Convection, Plate Tectonics
and Global Dynamics (edited by Peltier W. R.),1989, pp. 765-816, Gordon and Breach,
Newark, N. J.
Koch D. M., Koch D. L. Numerical and theoretical solution for a drop spreading below a
free fluid surface. J. Fluid Mech., 1995, v. 287, pp. 251-278.
Glansdorff P., Prigogine I. Thermodynamic theory of structure, stability and fluctuations.
John Wiley, London-New York-Sydney-Toronto, 1971, 306 p.
Gvelesiani A. I. Some aspects of the hail particles evolution. Ph.D. Thesis, Leningrad:
LHMI, 1970, 211 p.