Spatial Distribution Analyses of Axially Long Plasmas under a Multi-Cusp Magnetic Field Using a Kinetic Particle Simulation Code KEIO-MARC

Plasma Pub Date : 2024-01-22 DOI:10.3390/plasma7010005
Ryota Nishimura, T. Seino, Keigo Yoshimura, Hiroyuki Takahashi, Akinobu Matsuyama, Kazuo Hoshino, Tetsutarou Oishi, Kenji Tobita
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引用次数: 0

Abstract

To realize the development of a long plasma source with a uniform electron density distribution in the axial direction, the spatial distribution of plasma under a multi-cusp magnetic field was analyzed using a KEIO-MARC code. Considering a cylindrical plasma source with an axial length of 3000 mm and a cross-sectional diameter of 100 mm, in which the filament electrode was the electron source, the electron density distribution was calculated using the residual magnetic flux density, Bres, and the number of permanent magnets installed at different locations surrounding the device, Nmag, as design parameters. The results show that both Bres and Nmag improved the uniformity of the electron density distribution in the axial direction. The maximum axial electron density decreased with increasing Nmag and increased with increasing Bres. These trends can be explained by considering the nature of the multi-cusp field, where particles are mainly confined to the field-free region (FFR) near the center of the plasma column, and the loss of particles due to radial particle transport. The use of multiple filaments at intervals shorter than the plasma decay length dramatically improved axial uniformity. To further improve axial uniformity, the filament length and FFR must be properly set so that electrons are emitted inside the FFR.
利用动力学粒子模拟代码 KEIO-MARC 分析多尖顶磁场下轴向长等离子体的空间分布情况
为了开发轴向电子密度分布均匀的长等离子体源,我们使用 KEIO-MARC 代码分析了多尖角磁场下等离子体的空间分布。以一个轴向长度为3000毫米、横截面直径为100毫米的圆柱形等离子体源(其中灯丝电极为电子源)为例,以残余磁通密度Bres和装置周围不同位置安装的永久磁铁数量Nmag为设计参数,计算了电子密度分布。结果表明,Bres 和 Nmag 都改善了轴向电子密度分布的均匀性。最大轴向电子密度随着 Nmag 的增加而降低,随着 Bres 的增加而升高。考虑到多尖锥场的性质(粒子主要被限制在等离子体柱中心附近的无场区(FFR))以及粒子径向传输造成的粒子损失,可以解释这些趋势。使用间隔短于等离子体衰变长度的多丝可显著改善轴向均匀性。为了进一步提高轴向均匀性,必须适当设置灯丝长度和 FFR,以便电子在 FFR 内发射。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
2.30
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0.00%
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