A one-dimensional, two-fluid, steady state model is used for the analysis of ion temperature effects to the plasma-wall transition. In this paper, the model is solved for a finite ratio ε between the Debye and the ionization length, while in Part II [T. Gyergyek and J. Kovačič, Phys Plasmas 24, 063506 (2017)], the solutions for are presented. Ion temperature is treated as a given, independent parameter and it is included in the model as a boundary condition. It is shown that when the ion temperature larger than zero is selected, the ion flow velocity and the electric field at the boundary must be consistent with the selected ion temperature. A numerical procedure, how to determine such “consistent boundary conditions,” is proposed, and a simple relation between the ion temperature and ion velocity at the boundary of the system is found. The effects of the ion temperature to the pre-sheath length, potential, ion temperature, and ion density drops in the pre-sheath and in the sheath are investigated. It is concluded that larger ion temperature results in a better shielding of the plasma from the wall. An attempt is made to include the ion heat flux qi into the model in its simplest form , where is a constant heat conduction coefficient. It is shown that inclusion of such a term into the energy transfer equation introduces an additional ion heating mechanism into the system and the ion flow then becomes isothermal instead of adiabatic even in the sheath.
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June 2017
Research Article|
June 06 2017
Numerical analysis of ion temperature effects to the plasma wall transition using a one-dimensional two-fluid model. I. Finite Debye to ionization length ratio
T. Gyergyek
;
T. Gyergyek
1
Faculty of Electrical Engineering, University of Ljubljana
, Tržaška 25, 1000 Ljubljana, Slovenia
2
Jožef Stefan Institute
, Jamova 39, P.O. Box 100, 1000 Ljubljana, Slovenia
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J. Kovačič
J. Kovačič
2
Jožef Stefan Institute
, Jamova 39, P.O. Box 100, 1000 Ljubljana, Slovenia
Search for other works by this author on:
Phys. Plasmas 24, 063505 (2017)
Article history
Received:
February 24 2017
Accepted:
May 09 2017
Connected Content
A companion article has been published:
Numerical analysis of ion temperature effects to the plasma wall transition using a one-dimensional two-fluid model. II. Asymptotic two-scale limit
Citation
T. Gyergyek, J. Kovačič; Numerical analysis of ion temperature effects to the plasma wall transition using a one-dimensional two-fluid model. I. Finite Debye to ionization length ratio. Phys. Plasmas 1 June 2017; 24 (6): 063505. https://doi.org/10.1063/1.4984786
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