Analysis and Test on Magnetic Field for Spaceborne Permanent-Magnet Hall Thruster
1.National Key Laboratory of Science and Technology on Vacuum Technology and Physics, Lanzhou Institute of Space Technology and Physics,Lanzhou 730000,China;2.School of Materials Science and Engineering,Beijing University of Aeronautics and Astronautics, Beijing 100191,China
HU Jing1,2,JIANG Cheng-bao2,ZHANG Tian-ping1,GAO Jun1,ZHAO Yong1,ZHANG Wen-tao1. Analysis and Test on Magnetic Field for Spaceborne Permanent-Magnet Hall Thruster[J]. Journal of Propulsion Technology, 2019, 40(12): 2874-2880.
[1] 毛根旺, 韩先伟, 杨 涓, 等 . 电推进研究的技术状态和发展前景[J]. 推进技术, 2000, 21(5): 1-5.
[2] 杭观荣, 洪 鑫, 康小录 . 国外空间推进技术现状和发展趋势[J]. 火箭推进, 2013, 39(5): 7-15.
[3] 李 峰, 康 庆, 邢 杰, 等 . 大功率电推进电源处理单元技术[J]. 北京航空航天大学学报, 2016, 42 (8): 1575-1583.
[4] Loyan A V , Maksymenko T A . Performance Investigation of SPT-20cm Low Power Hall Effect Thruster[R]. IEPC 2007-100.
[5] Gonzalez J , Saccoccia G . ESA Electric Propulsion Activities[R]. IEPC 2011-329.
[6] Kamhawi H , Soulas G , Pinero L , et al . Overview of Hall Thruster Activities at NASA Glenn Research Center[R]. IEPC 2011-339.
[7] Hargus W , Jr R , Fife J M , et al . Preliminary Performance Results of the High Performance Hall System SPT-140[R]. AIAA2000-3250.
[8] Rossetti P , Valentian D . Analysis of Hall-Effect Thrusters Application to Formation Flying and Drag Compensation[R]. IEPC 2007-307.
[9] Alain D , Bjarne A , Johann S , et al . New Electric Propulsion Missions at SSC: The Use of SMART-1 Heritage and New Lessons Learnt[R]. IEPC 2009-053.
[10] Shumlak U , Jarboe T , Sprenger R . Physics of the Hall Thruster[R]. AIAA97-3048.
[11] 鄂 鹏 . 霍尔推力器通道内磁场对放电特性的影响研究[D]. 哈尔滨:哈尔滨工业大学, 2009.
[12] Jared M E , William A H . Plume Characteristics of the Busek 600W Hall Thruster[R]. AIAA 2006-465.
[13] Loyan A V , Maksymenko T A . Investigations of Low Power Hall Thruster SPT-20M on Increased Voltage Mode[R]. IEPC 2011-117.
[14] Jerry L R , Jason D S , Lyon B K . Efficiency Analysis of a Low Discharge Voltage Hall Thruster[R]. AIAA 2008- 4722.
[15] Kevin D D , James E P , Yevgeny R , et al . Low Power Cylindrical Hall Thruster Performance and Plume Properties[R]. AIAA2008-4998.
[16] Artem N S . Experimental and Theoretical Studies of Cylindrical Hall Thrusters[D]. Princeton :Princeton University, 2006.
[17] Tomoyuki I , Kazuya T , Hirokazu T , et al . Performance Characteristics of Very Low Power Cylindrical Hall Thrusters for the Nano-Satellite “PROITERES-3”[J]. Vacuum, 2013, 88: 63-69.
[18] Berti M , Biagioni L , Cesari U , et al . Development and Preliminary Characterization of a Low Power Hall Thruster Prototype[R]. AIAA2004-3944.
[19] Rossetti P , Andrenucci M . HT-100 Development Status[R]. IEPC 2009-126.
[20] Polzin K A , Sooby E S , Kimberlin A C , et al . Performance of a Permanent-Magnet Cylindrical Hall-Effect Thruster[R]. AIAA2009-4812.
[21] Ferreira J L , Martins A A , Costa E G , et al . Development of Permanent Magnet Hall Thrusters for Applications on Future Brazilian Space Missions[R]. IEPC 2015-185.
[22] Ryan C , Wantock T , Harle T , et al . Performance Characterization of the Low-Power Halo Electric Propulsion System [J]. Journal of Propulsion and Power, 2016, 32(6): 1544-1549.
[23] Khayms V , Maetines S M . Design of a Miniaturized Hall Thruster for Microsatellites[R]. AIAA96-3291.
[24] Khayms V . Design of a Miniaturized Hall Thruster for Microsatellites[D]. Boston: Massachusetts Institute of Technology, 1997.
[25] 林其壬, 赵佑民 . 磁路设计原理[M]. 北京:机械工业出版社, 1987.
[26] 陈 重, 崔正勤, 胡 冰 . 电磁场理论基础(第二版)[M]. 北京:北京理工大学出版社, 2010.
[27] Shirasaki A , Tahar H , Yoshikawa T , et al . Operational Characteristics of Cylindrical Hall Thrusters[R]. IEPC 2003-51.
[28] Tahara H , Tonari T . Performance Characteristics of Very Low Power Cylindrical Hall Thrusters[R]. IEPC 2009-272.