The radiative electromagnetic field in the object with the boundary of ideal conductivity
Matematičeskoe modelirovanie, Tome 16 (2004) no. 3, pp. 3-12.

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The model of the relativistic electron flux and electromagnetic field generation in the technological objects with the complex internal structure and ideal conductive boundary is considered. The electron flux is carried out by the compton ionization of the object's construction materials and gas filling. The compton electron's ionizing scattering on the gas molecules carry out slow electron current. The 3-d mathematical model of the self-consistent electromagnetic field is represented, the numerical algorithm of decision and corresponding computer code are described.
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A. V. Berezin; N. S. Kellin; M. B. Markov; S. V. Parot'kin; A. V. Sysenko. The radiative electromagnetic field in the object with the boundary of ideal conductivity. Matematičeskoe modelirovanie, Tome 16 (2004) no. 3, pp. 3-12. http://geodesic.mathdoc.fr/item/MM_2004_16_3_a0/

[1] Gaitler V., Kvantovaya teoriya izlucheniya, IL, M., 1956

[2] Berezin A. V., Kellin N. S., Markov M. B., Parotkin S. V., “Radiatsionnaya generatsiya elektricheskogo polya v ob'ektakh s neodnorodnoi strukturoi”, Matematicheskoe modelirovanie, 13:9 (2001), 37–44 | Zbl

[3] Eksperimentalnaya yadernaya fizika, ed. E. Serge, IL, M., 1958

[4] Landau L. D., Lifshits E. M., Kvantovaya elektrodinamika, Nauka, M., 1979 | MR

[5] Lifshits E. M., Pitaevskii L. P., Fizicheskaya kinetika, Nauka, M., 1979 | MR | Zbl

[6] Vlasov A. A., Teoriya mnogikh chastits, GITTL, M., 1952

[7] Ginzburg V. L., Gurevich F. V., “Nelineinye yavleniya v plazme, nakhodyascheisya v peremennom elektricheskom pole”, UFNB, 70:201 (1960) | Zbl

[8] Berezin A. V., Kellin N. S., Markov M. B., Parotkin S. V., Odnorodnaya gidrodinamicheskaya model dlya elektronov provodimosti v slaboionizirovannom gaze, preprint 8, IPM RAN, 2000

[9] Mak-Daniel I., Protsessy stolknovenii v ionizirovannykh gazakh, MIR, M., 1967

[10] Berezin A. V., Kellin N. S., Markov M. B., Parotkin S. V., Radiatsionnoe vozbuzhdenie elektricheskogo polya v zapolnennom gazom ob'ekte s neodnorodnoi strukturoi, preprint 37, IPM im. M. V. Keldysha RAN, 2001

[11] Hockney R. W., Eastwood J. W., Computer Simulation Using Particles, McGraw-Hill, New York, 1981

[12] Vedenyapin V. V., Kineticheskie uravneniya Boltsmana i Vlasova, FIZMATLIT, M., 2001

[13] Samarskii A. A., Teoriya raznostnykh skhem, Nauka, M., 1983 | MR