Electromagnetic mechanisms of forming a tornado-like whirlwind
Vestnik Moskovskogo universiteta. Matematika, mehanika, no. 2 (2014), pp. 31-37 Cet article a éte moissonné depuis la source Math-Net.Ru

Voir la notice de l'article

By the means of model approaches, the hypothesis of an important role of electromagnetic phenomena in the formation of tornado, or typhon according to Lomonosov's definition, is developed. A theoretical substantiation of forming the foamed liquid hill on the water surface under the tornado funnel sinking from the thundercloud is derived. A number of other effects accompanying the tornado formation and requiring the consideration of strong atmospheric electric field variations under the thundercloud are discussed.
@article{VMUMM_2014_2_a4,
     author = {V. L. Natyaganov and S. A. Maslov},
     title = {Electromagnetic mechanisms of forming a tornado-like whirlwind},
     journal = {Vestnik Moskovskogo universiteta. Matematika, mehanika},
     pages = {31--37},
     year = {2014},
     number = {2},
     language = {ru},
     url = {http://geodesic.mathdoc.fr/item/VMUMM_2014_2_a4/}
}
TY  - JOUR
AU  - V. L. Natyaganov
AU  - S. A. Maslov
TI  - Electromagnetic mechanisms of forming a tornado-like whirlwind
JO  - Vestnik Moskovskogo universiteta. Matematika, mehanika
PY  - 2014
SP  - 31
EP  - 37
IS  - 2
UR  - http://geodesic.mathdoc.fr/item/VMUMM_2014_2_a4/
LA  - ru
ID  - VMUMM_2014_2_a4
ER  - 
%0 Journal Article
%A V. L. Natyaganov
%A S. A. Maslov
%T Electromagnetic mechanisms of forming a tornado-like whirlwind
%J Vestnik Moskovskogo universiteta. Matematika, mehanika
%D 2014
%P 31-37
%N 2
%U http://geodesic.mathdoc.fr/item/VMUMM_2014_2_a4/
%G ru
%F VMUMM_2014_2_a4
V. L. Natyaganov; S. A. Maslov. Electromagnetic mechanisms of forming a tornado-like whirlwind. Vestnik Moskovskogo universiteta. Matematika, mehanika, no. 2 (2014), pp. 31-37. http://geodesic.mathdoc.fr/item/VMUMM_2014_2_a4/

[1] Lomonosov M.V., “Slovo o yavleniyakh vozdushnykh, ot elektricheskoi sily proiskhodyaschikh”: Lomonosov M.V., Izbrannye proizvedeniya, v. 1, Estestvennye nauki i filosofiya, Nauka, M., 1986, 163–191

[2] Vonnegut B., “Electrical theory of tornadoes”, J. Geophys. Res., 65:1 (1960), 203–212 | DOI

[3] Puankare A., Teoriya vikhrei, Regulyarnaya i khaoticheskaya dinamika, M.–Izhevsk, 2000

[4] Prandtl L., Gidroaeromekhanika, NITs RKhD, Izhevsk, 2000

[5] E.V. Scherbinin (red.), Elektrovikhrevye techeniya, Zinatne, Riga, 1985

[6] Nalivkin D.V., Uragany, buri i smerchi. Geograficheskie osobennosti i geologicheskaya deyatelnost, Nauka, L., 1970

[7] Arsenev S.A., Babkin V.A., Gubar A.Yu., Nikolaevskii V.N., Teoriya mezomasshtabnoi turbulentnosti. Vikhri atmosfery i okeana, NITs RKhD, M.–Izhevsk, 2010

[8] Natyaganov V.L., “Lomonosov i zagadki prirodnogo elektrichestva. Chast 1. Paradoksy sharovoi molnii”, Vestn. Mosk. un-ta. Matem. Mekhan., 2005, no. 6, 42–49

[9] Natyaganov V.L., “Lomonosov i paradoksalnyi fenomen atmosfernogo elektrichestva — sharovaya molniya”, Gazovaya i volnovaya dinamika, Airis-Press, M., 2005, 215–231

[10] Frenkel Ya.I., Teoriya yavlenii atmosfernogo elektrichestva, GITTL, M.–L., 1949

[11] Feinman R., Leiton Z., Sends M., Elektrichestvo i magnetizm, Feinmanovskie lektsii po fizike, V, Mir, M., 1966 | MR

[12] Maslov A.K., Natyaganov V.L., Chaika A.A., “Plavuchie degazatsionnye strui i svetovye predvestniki zemletryasenii”, Dokl. RAN, 439:4 (2011), 534–538 | Zbl

[13] Gendugov V.M., Natyaganov V.L., Chaika A.A., “Kosoi udar tsilindricheskoi strui o ploskost”, Dokl. RAN, 433:4 (2010), 481–484 | Zbl

[14] Voitsekhovskii B.B., “Ogni Elma i svechenie na predmetakh v oblake elektricheski zaryazhennykh kapel vody”, Dokl. AN SSSR, 262:1 (1982), 84–88 | MR

[15] Varaksin A.Yu., Romash M.E., Kopeitsev V.N., Tornado, Fizmatlit, M., 2011

[16] Natyaganov V.L., Maslov S.A., Maslov A.K., “Elektricheskaya gipoteza Lomonosova o prirode tornado i voskhodyaschie smerch-vikhri”, Sovremennye problemy elektrofiziki i elektrogidrodinamiki zhidkostei, SOLO, SPb., 2012, 73–75

[17] Squire H.B., “Jet emerging from a hole in plane wall”, Phil. Mag. Ser. 7, 43:343 (1952), 942–945 | DOI | MR | Zbl

[18] Shtern V., Borissov A., Hussain F., “Vortex-sinks with axial flows: solution and applications”, Phys. Fluids, 9:10 (1997), 2941–2959 | DOI | MR | Zbl

[19] Tarasov L.V., Atmosfera nashei planety, Fizmatlit, M., 2012

[20] Alekseenko S.V., Kuibin P.A., Okulov V.L., Vvedenie v teoriyu kontsentrirovannykh vikhrei, Institut kompyuternykh issledovanii, M.–Izhevsk, 2005 | MR

[21] Kistovich A.V., Chashechkin Yu.D., Vikhrevye i spiralnye struktury v odnorodnoi idealnoi zhidkosti, Preprint No 627 In-ta problem mekhaniki RAN, M., 1998

[22] Natyaganov V.L., “Elektrokapillyarno-vikhrevaya model sfericheskogo vikhrya Khilla–Teilora”, Dokl. RAN, 381:1 (2001), 50–52

[23] Ponomarenko Yu.B., “K teorii gidromagnitnogo dinamo”, Prikl. mekhan. i tekhn. fiz., 1973, no. 6, 47–51

[24] Moffat G., Vozbuzhdenie magnitnogo polya v provodyaschei srede, Mir, M., 1980

[25] Belyan A.V., Moiseev S.S., Petrosyan A.S., “Large-scale structures in turbulent multiphase flows”, J. Phys. Condens. Matter., 2 (1990), 469–475 | DOI

[26] Sokolov D.D., Shukurov A.M., Ruzmaikin A.A., “Asymptotic solution of the $\alpha$2-dynamo problem”, Geophys. Astrophys. Fluid Dynamics, 25 (1983), 293–307 | DOI | MR

[27] Chefranov A.S., Chefranov S.G., “Ekstremumy kineticheskoi energii i skorosti ee dissipatsii v gidromekhanike zakruchennykh potokov”, Dokl. RAN, 393:5 (2003), 624–628 | MR