DocumentCode :
106899
Title :
Numerical Study on Acceleration and Deceleration Mechanism of Weakly Ionized Plasma Flowing Supersonically Through Open Field Line
Author :
Tsuno, S. ; Nakahagi, T. ; Yamashiro, R. ; Nezu, A. ; Matsuura, H. ; Akatsuka, H.
Author_Institution :
Toshiba Corp., Tokyo, Japan
Volume :
42
Issue :
12
fYear :
2014
fDate :
Dec. 2014
Firstpage :
3732
Lastpage :
3741
Abstract :
We study supersonic flow of rarefied weakly ionized plasma at diverging magnetic field. While the flows of ions and neutral are treated by particle-based direct simulation Monte Carlo method, the electron is treated as a fluid, i.e., we carried out hybrid simulation. We calculate number density, velocity, temperature, and electric potential of charged particles and neutrals when the arc plasma flows out of the uniform magnetic field into lower pressure region in a steady state. We find the velocity increase just after passing the open magnetic field line, followed by deceleration due to collisions with residual molecules. We also find the temperature increase during the deceleration. In this acceleration/deceleration phenomena, the velocity difference between the neutrals and charged species are found, which also changes the electric potential. We discuss the mechanisms of potential formation along the plasma flow mainly by the pressure difference and the friction force between the charged particles and neutral species. The numerical results are, at least qualitatively, consistent with our previous experimental results.
Keywords :
Monte Carlo methods; arcs (electric); friction; plasma density; plasma magnetohydrodynamics; plasma shock waves; plasma simulation; plasma temperature; plasma transport processes; rarefied fluid dynamics; supersonic flow; acceleration phenomena; arc plasma flow; charged particles; deceleration phenomena; electric potential; friction force; hybrid simulation; neutral species; number density; open magnetic field line; particle-based direct simulation Monte Carlo method; rarefied weakly ionized plasma; residual molecules; supersonic flow; weakly ionized plasma; Electric potential; Ions; Magnetic domains; Mathematical model; Numerical models; Plasma temperature; Diverging magnetic field; hybrid simulation; ion slip; potential drop; rarefied flow; supersonic plasma flow; weakly ionized plasma;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2014.2336254
Filename :
6862899
Link To Document :
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