On a force balance and role of cathode plasma in Hall effect thrusters

被引:3
作者
Chernyshev, Timofey [1 ]
Krivoruchko, Dariya [2 ]
机构
[1] Russian Acad Sci, Joint Inst High Temp, Lab Electrophys & Plasma Proc 15 1, Moscow, Russia
[2] Moscow Inst Phys & Technol MIPT, Lab Innovat Instrumentat & Appl Nanotechnol, Dolgoprudnyi, Moscow Oblast, Russia
基金
俄罗斯科学基金会;
关键词
Hall effect thruster; E x B discharge; kinetic theory; numerical simulation; particles in cell; DISCHARGE; MODEL; FIELD; OSCILLATIONS; PLUME;
D O I
10.1088/1361-6595/ac4179
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
The cathode plasma is a specific transition region in the Hall effect thruster (HET) discharge that localizes between the strongly magnetized acceleration layer (magnetic layer or B-layer) and non-magnetized exhaust plume. Cathode plasma provides a flow of electron current that supplies losses in the magnetic layer (due to ionization, excitation, electron-wall interactions, etc). The electrons' transport in this region occurs in collisionless mode through the excitation of plasma instabilities. This effect is also known as 'anomalous transport/conductivity'. In this work, we present the results of a 2D (drift-plane) kinetic simulation of the HET discharge, including the outside region that contains cathode plasma. We discuss the process of cathode plasma formation and the mechanisms of 'anomalous transport' inside it. We also analyze how fluid force balance emerges from collisionless kinetic approach. The acceleration mechanism in HETs is commonly described in terms of force balance. Namely, the reactive force produced by accelerated ions has the same value as Ampere's force acting on a drift current loop. This balance written in integral form provides the basis for quantitative estimations of HETs' parameters and scaling models.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Hall-Effect Thrusters for Deep-Space Missions: A Review
    Bapat, Archit
    Salunkhe, Pramod B.
    Patil, Aakash, V
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2022, 50 (02) : 189 - 202
  • [2] An overview of discharge plasma modeling for Hall effect thrusters
    Hara, Kentaro
    PLASMA SOURCES SCIENCE & TECHNOLOGY, 2019, 28 (04)
  • [3] Discrete Cathode Power Supplies for Low Power Hall Effect Thrusters
    Savvas, Spiridon
    Ramnalis, Pavlos
    Manoudis, Alexandros
    Benetti, Luca
    Onida, Luca
    Fontani, Lorenzo
    2019 EUROPEAN SPACE POWER CONFERENCE (ESPC), 2019,
  • [4] Correlation Method of Average Plasma Velocity Measurement in Hall-Effect Thrusters
    Ning Zhongxi
    Li Hong
    Yu Daren
    PLASMA SCIENCE & TECHNOLOGY, 2009, 11 (06) : 709 - 713
  • [5] On Scaling of Hall Effect Thrusters
    Shagayda, Andrey A.
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2015, 43 (01) : 12 - 28
  • [6] Experimental study on the role of a resistor in the filter of Hall thrusters
    Wei Liqiu
    Wang Chunsheng
    Ning Zhongxi
    Liu Weiwei
    Zhang ChaoHai
    Yu Daren
    PHYSICS OF PLASMAS, 2011, 18 (06)
  • [7] Indicator of abnormal cathode electron emission state with gas flow in Hall thrusters
    Li, Jingjing
    Zhou, Liwei
    Hu, Yanlin
    Fan, Haotian
    Ma, Haochen
    Wei, Liqiu
    Ding, Yongjie
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2024, 57 (37)
  • [8] Effect of relative position between cathode and magnetic separatrix on the discharge characteristic of Hall thrusters
    Ding, Yongjie
    Li, Hong
    Li, Peng
    Jia, Boyang
    Wei, Liqiu
    Su, Hongbo
    Sun, Hezhi
    Wang, Lei
    Yu, Daren
    VACUUM, 2018, 154 : 167 - 173
  • [9] On the role of fluctuations, cathode placement, and collisions on the transport of electrons in the near-field of Hall thrusters
    Smith, A. W.
    Cappelli, M. A.
    PHYSICS OF PLASMAS, 2010, 17 (09)
  • [10] Plasma characterization in Hall thrusters by Langmuir probes
    Andreussi, T.
    Saravia, M. M.
    Andrenucci, M.
    JOURNAL OF INSTRUMENTATION, 2019, 14