Optimization of magnetic field design for Hall thrusters based on a genetic algorithm

Rui Tan, Guanrong Hang, Pingyang Wang
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Abstract

Magnetic field design is essential for the operation of Hall thrusters. This study focuses on utilizing a genetic algorithm to optimize the magnetic field configuration of SPT70. A 2D hybrid PIC-DSMC and channel-wall erosion model are employed to analyze the plume divergence angle and wall erosion rate, while a Farady probe measurement and laser profilometry system are set up to verify the simulation results. The results demonstrate that the genetic algorithm contributes to reducing the divergence angle of the thruster plumes and alleviating the impact of high-energy particles on the discharge channel wall,reducing the erosion by 5.5% and 2.7%, respectively. Further analysis indicates that the change from a divergent magnetic field to a convergent magnetic field, combined with the upstream shift of the ionization region, contributes to the improving the operation of the Hall thruster.
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基于遗传算法的霍尔推进器磁场优化设计
磁场设计对霍尔推进器的运行至关重要。本研究的重点是利用遗传算法优化 SPT70 的磁场配置。采用二维混合 PIC-DSMC 和槽壁侵蚀模型来分析羽流发散角和槽壁侵蚀率,同时建立法拉第探针测量和激光轮廓测量系统来验证模拟结果。结果表明,遗传算法有助于减小推进器羽流的发散角,减轻高能粒子对排放通道壁的影响,使侵蚀率分别降低了 5.5% 和 2.7%。进一步分析表明,从发散磁场到收敛磁场的变化,再加上电离区的上游移动,有助于改善霍尔推进器的运行。
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