The numerical calculation of plasma beam propagation in a toroidal duct with magnetized electrons and unmagnetized ions

被引:22
作者
Alterkop, B
Gidalevich, E
Goldsmith, S
Boxman, RL
机构
[1] Elec. Discharge and Plasma Lab., Tel Aviv University, Tel Aviv
[2] Raymond Beverly Sackler Fac. E., School of Physics and Astronomy, Tel Aviv University, Tel Aviv
[3] Fleischman Faculty of Engineering, Dept. of Interdisciplinary Studies, Tel Aviv University, Tel Aviv
关键词
D O I
10.1088/0022-3727/29/12/015
中图分类号
O59 [应用物理学];
学科分类号
摘要
Electron-magnetized vacuum are plasma transport in a magnetic toroidal duct is calculated numerically taking in account electron-ion collisions, electron and ion temperatures, and the high conductivity of the duct wall. The longitudinal magnetic field in the duct, the fully ionized plasma density and the electric potential distribution at the torus entrance are given, while the plasma density, electrical field and current, and macroscopic plasma velocity across the magnetic field inside the duct are calculated. Toroidal coordinates are used to describe plasma beam propagation. A Runge-Kutta routine is used for the calculations along the torus while a finite difference method is used across the torus cross section, it is found that plasma lass due to particle flux to the duct wall depends on the electron and ion temperatures and the plasma density distribution at the torus entrance cross section. With an electron temperature of T-8 = 20 000 K, 30 000 K and 50 000 K, an ion temperature T-i = 20 000 K and a Gaussian distribution of plasma density at the torus entrance with a maximum value n(0) = 10(19) m(-3), we found that the duct efficiency was less than 10% for longitudinal magnetic field strengths of 10 mT and 20 mT. in the case where only the electrons are magnetized, filter efficiency depends only weakly on the magnetic field strength, on T-e, and on T-i.
引用
收藏
页码:3032 / 3038
页数:7
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