Standard

Simulations of plasmas of positive column in rare gases. / Bogdanov, E.; Kudryavtsev, A. A.; Arslanbekov, R. R.; Kolobov, V. I.

In: IEEE International Conference on Plasma Science, 01.12.2004.

Research output: Contribution to journalConference articlepeer-review

Harvard

Bogdanov, E, Kudryavtsev, AA, Arslanbekov, RR & Kolobov, VI 2004, 'Simulations of plasmas of positive column in rare gases', IEEE International Conference on Plasma Science.

APA

Bogdanov, E., Kudryavtsev, A. A., Arslanbekov, R. R., & Kolobov, V. I. (2004). Simulations of plasmas of positive column in rare gases. IEEE International Conference on Plasma Science, [3P46].

Vancouver

Bogdanov E, Kudryavtsev AA, Arslanbekov RR, Kolobov VI. Simulations of plasmas of positive column in rare gases. IEEE International Conference on Plasma Science. 2004 Dec 1. 3P46.

Author

Bogdanov, E. ; Kudryavtsev, A. A. ; Arslanbekov, R. R. ; Kolobov, V. I. / Simulations of plasmas of positive column in rare gases. In: IEEE International Conference on Plasma Science. 2004.

BibTeX

@article{c1f20e1dff114f9db2195af5be2c8365,
title = "Simulations of plasmas of positive column in rare gases",
abstract = "Positive Column (PC) plasma has found various applications especially in lighting industry. We have applied a comprehensive discharge model to revisit physical phenomena in collisional plasmas of rare gases. The computational model includes an electron Boltzmann solver based on two-term spherical harmonics expansion of the distribution function, continuum model of ions, neutral and excited atoms, and an equation for gas temperature. The Poisson equation is solved to resolve the radial distribution of the electrostatic potential and the sheath structure. The axial electric field is calculated self-consistently for a given discharge current. Simulations are performed in a wide range of gas pressures (pR=0.1-100 Torr cm) and a wide range of discharge currents from diffusion controlled to recombination controlled regimes. Among the physical phenomena studied in this work are specifics of electron kinetics for different operating conditions, radial constriction of plasma with increasing gas pressures and currents, and effects of gas heating on the discharge structure in different gases (Argon, Neon, Helium). We discuss in details the importance of nonlocal effects and Coulomb collisions for electron kinetics under different conditions, and details of chemistry models on plasma structure and composition. In particular, we clarify the relative importance of electron kinetics, metastable atom kinetics and gas heating on discharge constriction in different gases. We also study transition from ambipolar to free electron diffusion at small discharge currents, specifically important for capillar (micro) discharges. We calculate different types of current-voltage characteristics and compare with available experimental data.",
author = "E. Bogdanov and Kudryavtsev, {A. A.} and Arslanbekov, {R. R.} and Kolobov, {V. I.}",
year = "2004",
month = dec,
day = "1",
language = "English",
journal = "IEEE International Conference on Plasma Science",
issn = "0730-9244",
publisher = "Institute of Electrical and Electronics Engineers Inc.",
note = "IEEE Conference Record - Abstracts: The 31st IEEE International Conference on Plasma Science, ICOPS2004 ; Conference date: 28-06-2004 Through 01-07-2004",

}

RIS

TY - JOUR

T1 - Simulations of plasmas of positive column in rare gases

AU - Bogdanov, E.

AU - Kudryavtsev, A. A.

AU - Arslanbekov, R. R.

AU - Kolobov, V. I.

PY - 2004/12/1

Y1 - 2004/12/1

N2 - Positive Column (PC) plasma has found various applications especially in lighting industry. We have applied a comprehensive discharge model to revisit physical phenomena in collisional plasmas of rare gases. The computational model includes an electron Boltzmann solver based on two-term spherical harmonics expansion of the distribution function, continuum model of ions, neutral and excited atoms, and an equation for gas temperature. The Poisson equation is solved to resolve the radial distribution of the electrostatic potential and the sheath structure. The axial electric field is calculated self-consistently for a given discharge current. Simulations are performed in a wide range of gas pressures (pR=0.1-100 Torr cm) and a wide range of discharge currents from diffusion controlled to recombination controlled regimes. Among the physical phenomena studied in this work are specifics of electron kinetics for different operating conditions, radial constriction of plasma with increasing gas pressures and currents, and effects of gas heating on the discharge structure in different gases (Argon, Neon, Helium). We discuss in details the importance of nonlocal effects and Coulomb collisions for electron kinetics under different conditions, and details of chemistry models on plasma structure and composition. In particular, we clarify the relative importance of electron kinetics, metastable atom kinetics and gas heating on discharge constriction in different gases. We also study transition from ambipolar to free electron diffusion at small discharge currents, specifically important for capillar (micro) discharges. We calculate different types of current-voltage characteristics and compare with available experimental data.

AB - Positive Column (PC) plasma has found various applications especially in lighting industry. We have applied a comprehensive discharge model to revisit physical phenomena in collisional plasmas of rare gases. The computational model includes an electron Boltzmann solver based on two-term spherical harmonics expansion of the distribution function, continuum model of ions, neutral and excited atoms, and an equation for gas temperature. The Poisson equation is solved to resolve the radial distribution of the electrostatic potential and the sheath structure. The axial electric field is calculated self-consistently for a given discharge current. Simulations are performed in a wide range of gas pressures (pR=0.1-100 Torr cm) and a wide range of discharge currents from diffusion controlled to recombination controlled regimes. Among the physical phenomena studied in this work are specifics of electron kinetics for different operating conditions, radial constriction of plasma with increasing gas pressures and currents, and effects of gas heating on the discharge structure in different gases (Argon, Neon, Helium). We discuss in details the importance of nonlocal effects and Coulomb collisions for electron kinetics under different conditions, and details of chemistry models on plasma structure and composition. In particular, we clarify the relative importance of electron kinetics, metastable atom kinetics and gas heating on discharge constriction in different gases. We also study transition from ambipolar to free electron diffusion at small discharge currents, specifically important for capillar (micro) discharges. We calculate different types of current-voltage characteristics and compare with available experimental data.

UR - http://www.scopus.com/inward/record.url?scp=13244279401&partnerID=8YFLogxK

M3 - Conference article

AN - SCOPUS:13244279401

JO - IEEE International Conference on Plasma Science

JF - IEEE International Conference on Plasma Science

SN - 0730-9244

M1 - 3P46

T2 - IEEE Conference Record - Abstracts: The 31st IEEE International Conference on Plasma Science, ICOPS2004

Y2 - 28 June 2004 through 1 July 2004

ER -

ID: 42903315