About changes in the characteristics of the electromagnetic field caused by the movement being in it conducting fluid
Matematičeskoe modelirovanie, Tome 28 (2016) no. 9, pp. 64-72.

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The simulation of the motion of a conducting fluid in a magnetic field is considered in this paper. The flow proceeds along the channel in the form of a spiral. The possible reasons leading to changes in the parameters of an external magnetic field caused by the movement of the medium the examined. Modeling is based on the equations of magnetohydrodynamics, which are implemented in the software package ANSYS. The problem is solved in a stationary setting.
Keywords: numerical modeling, magnetic field, speed, electromagnetic force, potential, polarization.
Mots-clés : Lorentz force, dipole
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S. Yu. Malamanov. About changes in the characteristics of the electromagnetic field caused by the movement being in it conducting fluid. Matematičeskoe modelirovanie, Tome 28 (2016) no. 9, pp. 64-72. http://geodesic.mathdoc.fr/item/MM_2016_28_9_a4/

[1] L. D. Pukhtyar, A. S. Kukushkin, “Investigation of the Electromagnetic Fields Induced by Sea Motion”, Physical Oceanography, 7:1 (1996), 33–41 | DOI

[2] S. V. Semkin, V. P. Smagin, V. N. Savchenko, “Generatsiya vozmushcheniy magnitnogo polya pri podvodnom vzryve”, Izvestiya RAN. Fizika atmosfery i okeana, 46:1 (2010), 138–141

[3] A. V. Gulyelmi, “Ultra nizkochastotnyye elektromagnitnyye volny v kore i magnitosfere Zemli”, UFN, 177:12 (2007), 1257–1276 | DOI

[4] V. V. Zhmur, Mezomasshtabnyye vikhri okeana, GEOS, M., 2010, 290 pp.

[5] V. V. Novozhilov, V. A. Pavlovskii, Ustanovivshiesia turbulentnye techeniia neszhimaemoi zhidkosti, Izd-vo S.-Peterb. un-ta, SPb., 2013, 483 pp.

[6] V. N. Timofeyev, Ye. A. Golovenko (red.), Prikladnaya magnitnaya gidrodinamika, Uchebnoye posobiye po teoreticheskomu kursu, Sibirskiy federal'nyy universitet, Krasnoyarsk, 2007

[7] S. Yu. Malamanov, “Chislennoye modelirovaniye zadach o silovom vzaimodeystvii gidrodinamicheskogo i elektromagnitnogo poley”, Matemat. modelirovaniye, 27:11 (2015), 56–62

[8] I. M. Kirko, G. Ye. Kirko, Magnitnaya gidrodinamika. Sovremennoye videniye problem, NITS «Regulyarnaya i khaoticheskaya dinamika». Izhevskiy institut komp'yuternykh issledovaniy, M.–Izhevsk, 2009, 632 pp.

[9] D. V. Sivukhin, Obshchii kurs fiziki, Uchebnoe posobie, v 5 t., v. 3, Elektrichestvo, Nauka. Fizmatlit, M., 2009, 656 pp.

[10] T. A. Semenova (red.), Geomagnitnyye vozmushcheniya ot impul'snykh istochnikov, NIYATS MIFI, M., 2009, 420 pp.

[11] Ya. I. Frenkel, Elektrodinamika, v. 1, Obshchaya teoriya elektrichestva, ONTI, 1934, 428 pp.

[12] I. Ye. Tamm, Osnovy teorii elektrichestva, Uchebnoye posobiye dlya vuzov, 11-ye izd., Fizmatlit, M., 2003, 616 pp.