Ionization of hot gas flows of high density by X-ray radiation during photoluminescence of the transmission-type anode
Problemy fiziki, matematiki i tehniki, no. 1 (2023), pp. 13-19.

Voir la notice de l'article provenant de la source Math-Net.Ru

A model is proposed and the calculation of a pulsed ionizer of dense gas fluxes is made, based on the absorption of intense, characteristic, X-ray radiation from a copper anode of the transmission type, covered with a layer of tungsten or molybdenum. The pulse power of the ionizer is from 250 to 1000 kW, which makes it possible to ionize to a high degree of ionization close to $\sim$100% the dense gas flow of atoms and molecules in the combustion chamber of a small-sized, liquid, jet engine or for other applications in science and technology.
Keywords: extrapolated mileage, fluorescence of primary X-rays, photoluminescence of secondary X-rays.
@article{PFMT_2023_1_a1,
     author = {S. T. Voronin},
     title = {Ionization of hot gas flows of high density by {X-ray} radiation during photoluminescence of the transmission-type anode},
     journal = {Problemy fiziki, matematiki i tehniki},
     pages = {13--19},
     publisher = {mathdoc},
     number = {1},
     year = {2023},
     language = {ru},
     url = {http://geodesic.mathdoc.fr/item/PFMT_2023_1_a1/}
}
TY  - JOUR
AU  - S. T. Voronin
TI  - Ionization of hot gas flows of high density by X-ray radiation during photoluminescence of the transmission-type anode
JO  - Problemy fiziki, matematiki i tehniki
PY  - 2023
SP  - 13
EP  - 19
IS  - 1
PB  - mathdoc
UR  - http://geodesic.mathdoc.fr/item/PFMT_2023_1_a1/
LA  - ru
ID  - PFMT_2023_1_a1
ER  - 
%0 Journal Article
%A S. T. Voronin
%T Ionization of hot gas flows of high density by X-ray radiation during photoluminescence of the transmission-type anode
%J Problemy fiziki, matematiki i tehniki
%D 2023
%P 13-19
%N 1
%I mathdoc
%U http://geodesic.mathdoc.fr/item/PFMT_2023_1_a1/
%G ru
%F PFMT_2023_1_a1
S. T. Voronin. Ionization of hot gas flows of high density by X-ray radiation during photoluminescence of the transmission-type anode. Problemy fiziki, matematiki i tehniki, no. 1 (2023), pp. 13-19. http://geodesic.mathdoc.fr/item/PFMT_2023_1_a1/

[1] S.A. Ivanov, Rentgenovskie trubki tekhnicheskogo naznacheniya, Energoatomizdat, L., 1989, 200 pp.

[2] E.M. Stepanov, B.G. Dyachkov, Ionizatsiya v plameni i elektricheskoe pole, Metallurgiya, M., 1968, 312 pp.

[3] V. P. Glushko (red.), Termodinamicheskie i teplofizicheskie svoistva produktov sgoraniya, spravochnik v 10 tomakh, VINITI AN SSSR, M., 1979

[4] M.A. Blokhin, I.G. Shveitser, Rentgenospektralnyi spravochnik, Nauka, M., 1982, 376 pp.

[5] Klyuev V. V. (red.), Rentgenotekhnika, Spravochnik v dvukh knigakh, Mashinostroenie, M., 1992, 480 pp.

[6] L.C. Feldman, J.W. Mayer, Fundamentals of Surface and Thin Film Analysis, Elsevier Science Publishing, New York–Amsterdam–London, 1986, 342 pp.

[7] E.V. Chuprunov, M.A. Fadeev, E.V. Alekseev, Rentgenovskie metody issledovaniya tverdykh tel, Nizhegorodskii gosudarstvennyi universitet, N. Novgorod, 2007, 194 pp.

[8] R.D. Evans, The atomic Nucleus, McGraw-Hill, New York, 1955, 243 pp. | Zbl

[9] V.P. Mashkovich, A.V. Kudryavtseva, Zaschita ot ioniziruyuschikh izluchenii, Spravochnik, 4-e izdanie, Energoatomizdat, M., 1995, 496 pp.

[10] M.A. Blokhin, Fizika rentgenovskikh luchei, Gosudarstvennoe izdatelstvo tekhniko-teoreticheskoi literatury, M., 1957, 518 pp.

[11] O.S. Marenkov, N.I. Komyak, Fotonnye koeffitsienty vzaimodeistviya v rentgenoradiometricheskom analize, spravochnik, Energoatomizdat, L., 1988, 223 pp.

[12] Abramovich G. N., Applied Gas Dynamics, v. 1, Nauka, M., 1991, 597 pp.