Effects of Different Wall Erosion on Low Frequency Oscillation Characteristics of Hall Thruster
1.School of Computer and Information Engineering,Harbin University of Commerce,Harbin 150028,China;2.School of Energy Science and Engineering,Harbin Institute of Technology,Harbin 150001,China
HAN Ke1, WANG Ying1, LU Hai-feng2. Effects of Different Wall Erosion on Low Frequency Oscillation Characteristics of Hall Thruster[J]. Journal of Propulsion Technology, 2020, 41(6): 1434-1440.
[1] Mazouffre S, Dubois F, Albarede L, et al. Plasma Induced Erosion Phenomena in a Hall Thruster[C]. Istanbul: Proceedings of International Conference on Recent Advances in Space Technologies, 2003.
[2] 江滨浩, 赵一男, 魏立秋, 等. 霍尔推力器振荡问题的研究综述[J]. 宇航学报, 2009, 30(6): 2062-2071.
[3] 李擎宇. 霍尔推进器通道器壁腐蚀的数值模拟[D]. 哈尔滨:哈尔滨工业大学, 2015.
[4] Cheng S Y M. Modeling of Hall Thruster Lifetime and Erosion Mechanisms[D]. Boston:Massachusetts Institute of Technology, 2007.
[5] Absalamov S K, Andreev V B. Measurement of Plasma Parameters in the Stationary Plasma Thruster(SPT-100) Plume and Its Effect on Spacecraft Components[C]. Nashville:28th AIAA, SAE, ASME, and ASEE, Joint Propulsion Conference and Exhibit, 1992.
[6] Mason L S, Jankovsky R S, Manzella D H. 1000 Hours of Testing on a 10 Kilowatt Hall Effect Thruster[C]. Salt Lake City:37th AIAA Joint Propulsion Conference, 2001.
[7] Koizumi Hiroyuki, KimiyaKomurasaki, Arakawa Yoshihiro. Numerical Prediction of Wall Erosion on a Hall Thruster[J]. Vacuum, 2008, 83(1): 67-71.
[8] Cao Xi-feng, Liu Hui, Jiang Wen-jia, et al. Influence of Channel Length on Discharge Performance of Anode Layer Hall Thruster Studied by Particle-in-Cell Simulation[J]. Chinese Physics B, 2018, 27(8).
[9] 李照忠. 霍尔推进器放电电流低频振荡特性及性能的仿真研究[D]. 哈尔滨:哈尔滨工业大学, 2013.
[10] 张 旭, 魏 鑫, 刘 敏, 等. 霍尔推力器阳极加热机制及设计优化[J]. 推进技术, 2019, 40(3): 699-706.
[11] 李 鸿, 刘 鹏, 于达仁. 霍尔推力器壁面形貌误差的侵蚀演化规律[J]. 中国科技论文, 2015, 10(4):416-419.
[12] Kwon K, Walker M L R, Mavris D N. Self-Consistent, One-Dimensional Analysis of the Hall Effect Thruster[J]. Plasma Sources Science & Technology, 2011, 20(4).
[13] Wei Li-qiu, Han Liang, Yang Zi-yi, et al. Modulating Action of Low Frequency Oscillations on High Frequency Instabilities in Hall Thrusters[J]. Journal of Applied Physics, 2015, 117(5).
[14] 吴晓鸰. 稳态等离子发动机低频振荡及镇定方法研究[D]. 哈尔滨:哈尔滨工业大学, 2003.
[15] Wei Li-qiu, Wang Chun-sheng, Han Ke, et al. Effect of Ionization Distribution on the Low Frequency Oscillations Mode in Hall Thrusters[J]. Physics of Plasmas, 2012, 19(1).
[16] Yu Da-ren, Wang Chun-sheng, Wei Li-qiu, et al. Stabilizing of Low Frequency Oscillation in Hall Thrusters[J]. Physics of Plasmas, 2008, 15(11).
[17] 王春生. 霍尔推力器低频振荡特性及控制研究[D]. 哈尔滨:哈尔滨工业大学, 2011
[18] 李 敏, 汤海滨, 王立君, 等. 霍尔推力器放电通道溅射腐蚀计算[J]. 强激光与粒子束, 2011, 23(10):2757-2762.
[19] Wei Li-qiu, Han Liang, Yu Da-ren, et al. Low-Frequency Oscillations in Hall Thrusters[J]. Chinese Physics B, 2015, 24(5): 121-130.
[20] Goebel D M, Katz I. Fundamentals of Electric Propulsion:Ion and Hall Thruster[M]. New Jersey:John Wiley & Sons, 2008.
[21] 鄂 鹏, 段 萍, 江滨浩, 等. 磁场梯度对Hall推力器放电特性影响的实验研究[J]. 物理学报, 2010, 59(10): 7182-7190.