首页> 外文期刊>Contributions to Plasma Physics >Study on the Relation Between Discharge Voltage and Magnetic Field Topography in a Hall Thruster Discharge Channel
【24h】

Study on the Relation Between Discharge Voltage and Magnetic Field Topography in a Hall Thruster Discharge Channel

机译:霍尔推力器放电通道放电电压与磁场形貌关系的研究

获取原文
获取原文并翻译 | 示例
           

摘要

The relation between magnetic field topography and operating voltage is investigated in a 1kW Hall thruster discharge channel in order to focus the ion beam effectively and optimize the performance. The curvature of magnetic field line (alpha) is introduced to characterize the differences of topologies. The optimized magnetic field distribution under each operating voltage is obtained by experiment. Through the curvature transformation, we find that the area of (alpha > 1) in the channel gradually decreases with the increase of the operating voltage. In response to the results above, two dimensional plasma flows are simulated employing Particle-in-Cell method. The distributions of the electric potential, ion density and ion radial velocity are calculated to understand the important influence of the relation above on ion beam focusing. The numerical results indicate that magnetic field curvature and thermal electric field control the ion beam in the ionization and acceleration zone, respectively. The magnetic field topography and discharge voltage interact with each other and together form the focusing electric field. The ion radial mobility is suppressed effectively and the ion beam is focused to the channel centerline. In addition, for a given voltages, when the area of (alpha > 1) is larger than the optimal scope, the electric potential lines excessively bend to the anode causing ion over focus; contrarily, the electric potential lines will bend to the exit and defocus ions. All these results suggest the relation between magnetic field topography and discharge voltage is important to the ion radial flow control and performance optimization of the Hall thruster.
机译:在1kW霍尔推力器放电通道中研究了磁场形貌与工作电压之间的关系,以有效地聚焦离子束并优化性能。引入磁场线的曲率(alpha)来表征拓扑的差异。通过实验获得了在每个工作电压下的最佳磁场分布。通过曲率变换,我们发现通道中(alpha> 1)的面积随着工作电压的增加而逐渐减小。响应于以上结果,采用单元中粒子方法模拟了二维等离子体流。计算电位,离子密度和离子径向速度的分布,以了解上述关系对离子束聚焦的重要影响。数值结果表明,磁场曲率和热电场分别控制着电离区和加速区中的离子束。磁场的形貌和放电电压相互影响,共同形成聚焦电场。有效地抑制了离子的径向迁移率,并且离子束聚焦到通道中心线。另外,对于给定的电压,当(α> 1)的面积大于最佳范围时,电位线会过度弯曲到阳极,从而导致离子聚焦。相反,电势线将弯曲到出口并使离子散焦。所有这些结果表明,磁场形貌与放电电压之间的关系对于霍尔推力器的离子径向流控制和性能优化至关重要。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号