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The Influence of Convective Current Generator on the Global Current : Volume 13, Issue 2 (29/06/2006)

By Morozov, V. N.

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Book Id: WPLBN0004019760
Format Type: PDF Article :
File Size: Pages 4
Reproduction Date: 2015

Title: The Influence of Convective Current Generator on the Global Current : Volume 13, Issue 2 (29/06/2006)  
Author: Morozov, V. N.
Volume: Vol. 13, Issue 2
Language: English
Subject: Science, Nonlinear, Processes
Collections: Periodicals: Journal and Magazine Collection (Contemporary), Copernicus GmbH
Historic
Publication Date:
2006
Publisher: Copernicus Gmbh, Göttingen, Germany
Member Page: Copernicus Publications

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Morozov, V. N. (2006). The Influence of Convective Current Generator on the Global Current : Volume 13, Issue 2 (29/06/2006). Retrieved from http://hawaiilibrary.net/


Description
Description: Main Geophysical Observatory, Karbysheva 7, St-Petersburg, Russia. The mathematical generalization of classical model of the global circuit with taking into account the convective current generator, working in the planetary boundary layer was considered. Convective current generator may be interpreted as generator, in which the electromotive force is generated by processes, of the turbulent transport of electrical charge. It is shown that the average potential of ionosphere is defined not only by the thunderstorm current generators, working at the present moment, but by the convective current generator also. The influence of the convective processes in the boundary layer on the electrical parameters of the atmosphere is not only local, but has global character as well. The numerical estimations, made for the case of the convective-unstable boundary layer demonstrate that the increase of the average potential of ionosphere may be of the order of 10% to 40%.

Summary
The influence of convective current generator on the global current

Excerpt
Frenkel, Y. I.: Theory electric phenomena of atmosphere, L.-M., Gostehizdat (in Russian), 155 p., 1949.; Hays, P. B. and Roble, R. G.: A quasi-static model of global atmospheric electricity. I. Lower Atmosphere, J. Geophys. Res., 84(A7), 3291–3305, 1979.; Holser, R. E. and Saxon, D. S.: Distribution of electrical conduction current in the vicinity of thunderstorm, J. Geophys. Res., 52(2), 207–217, 1952.; Imjanitov, I. M. and Kolokolov, V. P.: Investigations of electric field of atmosphere, Trudy MGO (in Russian), 334, 232–250, 1974.; Monin, A. S. and Yaglom, A. I.: Statistical hydromechanics. Part 1. M., Science (in Russian), 639 p., 1965.; Morozov, V. N.: Models of atmospheric circuit, Ser. Meteorology, 8, VNIIGMI-MCD, Obninsk (in Russian), 56 p., 1981.; Morse F. M. and Feshbah, G.: Methods of theoretical physics. 2. M.-L. (in Russian), 886 p., 1960.; Willet, J. C.: Fair-Weather electric charge transfer by convection in an unstable planetary boundary layer, J. Geophys. Res., 84(C2), 703–718, 1979.; Pulinets, A., Khegai, V. V., Boyarchuk, K. A., and Lomonosov, A. M.: Atmospheric Electric field as a Source of Ionospheric Variability, Physics-Uspekhi (in Russian), 41(5), 515–522, 1998.; Selezneva, A. N.: Influence of thunderstorm generators on atmospheric circuit. Atmospheric Electricidy, Proceeding of 2th symposium of USSR, L., Gidrometeoizdat (in Russian), 17–19, 1984.; Wilson, C. T. R.: Investigations of lightning discharged and electric fields of thunderstorms, Phyl. Trans. Roy. Soc., London, 221, 75–115, 1925.

 

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