Advanced Search+
REN Junxue (任军学), LI Juan (李娟), XIE Kan (谢侃), TIAN Huabing (田华兵), et al.. Three Dimensional Simulation of Ion Thruster Plume-Spacecraft Interaction Based on a Graphic Processor Unit[J]. Plasma Science and Technology, 2013, 15(7): 702-709. DOI: 10.1088/1009-0630/15/7/18
Citation: REN Junxue (任军学), LI Juan (李娟), XIE Kan (谢侃), TIAN Huabing (田华兵), et al.. Three Dimensional Simulation of Ion Thruster Plume-Spacecraft Interaction Based on a Graphic Processor Unit[J]. Plasma Science and Technology, 2013, 15(7): 702-709. DOI: 10.1088/1009-0630/15/7/18

Three Dimensional Simulation of Ion Thruster Plume-Spacecraft Interaction Based on a Graphic Processor Unit

Funds: supported by National Natural Science Foundation of China (No.10805004) and Foundation of National Key Lab. of Science and Technology on Vacuum & Cryogenic of China (No.9140C550404100C55)
More Information
  • Received Date: December 30, 2011
  • Based on the three-dimensional particle-in-cell (PIC) method and Compute Unified Device Architecture (CUDA), a parallel particle simulation code combined with a graphic processor unit (GPU) has been developed for the simulation of charge-exchange (CEX) xenon ions in the plume of an ion thruster. Using the proposed technique, the potential and CEX plasma distribution are calculated for the ion thruster plume surrounding the DS1 spacecraft at different thrust levels. The simulation results are in good agreement with measured CEX ion parameters reported in literature, and the GPU’s results are equal to a CPU’s. Compared with a single CPU Intel Core 2 E6300, 16-processor GPU NVIDIA GeForce 9400 GT indicates a speedup factor of 3.6 when the total macro particle number is 1.1×106 . The simulation results also reveal how the back flow CEX plasma affects the spacecraft floating potential, which indicates that the plume of the ion thruster is indeed able to alleviate the extreme negative floating potentials of spacecraft in geosynchronous orbit.
  • Related Articles

    [1]Xinwei CHEN, Bijiao HE, Zuo GU, Hai GENG, Ning GUO, Yong ZHAO, Kai SHI, Kai TIAN, Tao CHEN, Yifan MA. Investigation into the thermal effect of the LIPS-200 ion thruster plume[J]. Plasma Science and Technology, 2022, 24(7): 074003. DOI: 10.1088/2058-6272/ac4dea
    [2]Xinyu LIU (刘欣宇), Xiaoming KANG (康小明), Hanwen DENG (邓涵文), Yiming SUN (孙逸鸣). Energy properties and spatial plume profile of ionic liquid ion sources based on an array of porous metal strips[J]. Plasma Science and Technology, 2021, 23(12): 125502. DOI: 10.1088/2058-6272/ac23bd
    [3]M Serhan YILDIZ, Murat CELIK. Plume diagnostics of BUSTLab microwave electrothermal thruster using Langmuir and Faraday probes[J]. Plasma Science and Technology, 2019, 21(4): 45505-045505. DOI: 10.1088/2058-6272/aaf280
    [4]Yanhui JIA (贾艳辉), Juanjuan CHEN (陈娟娟), Ning GUO (郭宁), Xinfeng SUN (孙新锋), Chenchen WU (吴辰宸), Tianping ZHANG (张天平). 2D hybrid-PIC simulation of the two and three-grid system of ion thruster[J]. Plasma Science and Technology, 2018, 20(10): 105502. DOI: 10.1088/2058-6272/aace52
    [5]Hongru ZHENG (郑鸿儒), Guobiao CAI (蔡国飙), Hongyue WANG (王虹玥), Lihui LIU (刘立辉), Bijiao HE (贺碧蛟). Three-dimensional particle simulation of ion thruster plume flows with EX-PWS[J]. Plasma Science and Technology, 2018, 20(10): 105501. DOI: 10.1088/2058-6272/aad5da
    [6]Kai ZHAO (赵凯), Feng LI (李锋), Baigang SUN (孙佰刚), Hongyu YANG (杨宏宇), Tao ZHOU (周韬), Ruizhi SUN (孙睿智). Numerical and experimental investigation of plasma plume deflection with MHD flow control[J]. Plasma Science and Technology, 2018, 20(6): 65511-065511. DOI: 10.1088/2058-6272/aab2a4
    [7]Zun ZHANG (张尊), Kan XIE (谢侃), Jiting OUYANG (欧阳吉庭), Ning GUO (郭宁), Yu QIN (秦宇), Qimeng XIA (夏启蒙), Song BAI (白松), Xianming WU (吴先明), Zengjie GU (谷增杰). Steady and oscillatory plasma properties in the near-field plume of a hollow cathode[J]. Plasma Science and Technology, 2018, 20(2): 24010-024010. DOI: 10.1088/2058-6272/aa9d7d
    [8]Atif HUSSAIN, LI Qi (李奇), HAO Zuoqiang (郝作强), GAO Xun (高勋), LIN Jingquan (林景全). The Effect of an External Magnetic Field on the Plume Expansion Dynamics of Laser-Induced Aluminum Plasma[J]. Plasma Science and Technology, 2015, 17(8): 693-698. DOI: 10.1088/1009-0630/17/8/14
    [9]WANG Teng (王腾), GAO Xiangdong (高向东), Katayama SEIJI. Analysis of Laser-Induced Plume During Disk Laser Welding at Different Speeds[J]. Plasma Science and Technology, 2013, 15(8): 821-824. DOI: 10.1088/1009-0630/15/8/20
    [10]V. SIVAKUMARAN, AJAI KUMAR, R. K. SINGH, V. PRAHLAD, H. C. JOSHI. Atomic Processes in Emission Characteristics of a Lithium Plasma Plume Formed by Double-Pulse Laser Ablation[J]. Plasma Science and Technology, 2013, 15(3): 204-208. DOI: 10.1088/1009-0630/15/3/02

Catalog

    Article views (256) PDF downloads (1175) Cited by()

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return