Mots-clés : axis inclination.
@article{UZKU_2008_150_3_a5,
author = {R. A. Ibragimov and A. E. Staroverov and A. Kh. Gil'mutdinov},
title = {Helicoidal {Coil} {Electromagnetic} {Field} {Axis} {Position} in {Inductively} {Coupled} {Plasma} {Torch.}},
journal = {U\v{c}\"enye zapiski Kazanskogo universiteta. Seri\^a Fiziko-matemati\v{c}eskie nauki},
pages = {57--61},
year = {2008},
volume = {150},
number = {3},
language = {ru},
url = {http://geodesic.mathdoc.fr/item/UZKU_2008_150_3_a5/}
}
TY - JOUR AU - R. A. Ibragimov AU - A. E. Staroverov AU - A. Kh. Gil'mutdinov TI - Helicoidal Coil Electromagnetic Field Axis Position in Inductively Coupled Plasma Torch. JO - Učënye zapiski Kazanskogo universiteta. Seriâ Fiziko-matematičeskie nauki PY - 2008 SP - 57 EP - 61 VL - 150 IS - 3 UR - http://geodesic.mathdoc.fr/item/UZKU_2008_150_3_a5/ LA - ru ID - UZKU_2008_150_3_a5 ER -
%0 Journal Article %A R. A. Ibragimov %A A. E. Staroverov %A A. Kh. Gil'mutdinov %T Helicoidal Coil Electromagnetic Field Axis Position in Inductively Coupled Plasma Torch. %J Učënye zapiski Kazanskogo universiteta. Seriâ Fiziko-matematičeskie nauki %D 2008 %P 57-61 %V 150 %N 3 %U http://geodesic.mathdoc.fr/item/UZKU_2008_150_3_a5/ %G ru %F UZKU_2008_150_3_a5
R. A. Ibragimov; A. E. Staroverov; A. Kh. Gil'mutdinov. Helicoidal Coil Electromagnetic Field Axis Position in Inductively Coupled Plasma Torch.. Učënye zapiski Kazanskogo universiteta. Seriâ Fiziko-matematičeskie nauki, Kazanskii Gosudarstvennyi Universitet. Uchenye Zapiski. Seriya Fiziko-Matematichaskie Nauki, Tome 150 (2008) no. 3, pp. 57-61. http://geodesic.mathdoc.fr/item/UZKU_2008_150_3_a5/
[1] Dresvin S. V., Bobrov A. A., Lelevkin V. N. i dr., VCh- i SVCh-plazmotrony, Nauka, Novosibirsk, 1992, 319 pp.
[2] Boulos M. I., “The Inductively Coupled Radio Frequency Plasma”, High Temp. Mater. Process, 1:1 (1997), 17–39
[3] Gitzhofer F., “Induction plasma synthesis of ultrafine SiC”, Pure and Appl. Chem., 68:5 (1996), 1113–1119 | DOI
[4] Soucy G., Jurewicz J. W., Boulos M. I., “Parametric study of the plasma synthesis of ultrafine silicon nitride powders”, J. Mater. Sci., 30:8 (1995), 2008–2014 | DOI
[5] Montaser A., Golightly D. W.(eds.), Inductively coupled plasmas in analytical atomic spectrometry, VCH Publishers, N. Y., 1992, 1017 pp.
[6] Montaser A.(ed.), Inductively coupled plasma Mass Spectrometry, Wiley-VCH, N. Y., 1998, 964 pp.
[7] Chen X., Pfender E., “Modeling of RF Plasma Torch with a Metallic Tube Inserted for Reactant Injection”, Plasma Chem. Plasma Process, 11:1 (1991), 103–128 | DOI
[8] Proulx P., Mostaghimi J., Boulos M. I., “Radiative Energy Transfer in Induction Plasma Modeling”, Int. J. Heat Mass Transfer, 34:10 (1991), 2571–2579 | DOI
[9] Colombo V., Panciatichi C., Zazo A. et al., “Modeling, project, numerical simulation, and AES temperature diagnostics of an inductively coupled plasma torch for the deposition of high-purity fused silica for optical waveguide production”, IEEE Trans. Plasma Sci., 25:5 (1997), 1073–1080 | DOI
[10] Paul K. C., Mostaghimi J., Ishigaki T. et al., “Transient Response of Radio Frequency Inductively Coupled Plasma for Pulse Modulation”, Plasma Chem. Plasma Process, 21:3 (2001), 371–400 | DOI
[11] Bernardi D., Colombo V., Ghedini E. et al., “Three-dimensional modelling of inductively coupled plasma torches”, Eur. Phys. J. D., 22:1 (2003), 119–125 | DOI
[12] Bernardi D., Colombo V., Ghedini E. et al., “Three-dimensional effects in the modelling of ICPTs. Part I: Fluid dynamics and electromagnetics”, Eur. Phys. J. D., 25:3 (2003), 271–277 | DOI
[13] Bernardi D., Colombo V., Ghedini E. et al., “Three-dimensional effects in the modelling of ICPTs. Part II: Induction coil and torch geometry”, Eur. Phys. J. D., 25:3 (2003), 279–285 | DOI | MR