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Numerical study on the electron-wall interaction in a Hall thruster with segmented electrodes placed at the channel exit
Authors:Qing Shao-Wei  E Peng  Duan Ping  and Xu Dian-Guo
Affiliation:[1]Power Engineering Institute, Chongqing University, Chongqing 400044, China [2]Department of Electrical Engineering, Harbin Institute of Technology, Harbin 150001, China [3]School of Physics, Dalian Maritime University, Dalian 116026, China
Abstract:Electron-wall interaction is always recognized as an important physical problem because of its remarkable influences on thruster discharge and performance. Based on existing theories, an electrode is predicted to weaken electron-wall interaction due to its low secondary electron emission characteristic. In this paper, the electron-wall interaction in an Aton-type Hall thruster with low-emissive electrodes placed near the exit of discharge channel is studied by a fully kinetic particle-incell method. The results show that the electron-wall interaction in the region of segmented electrode is indeed weakened, but it is significantly enhanced in the remaining region of discharge channel. It is mainly caused by electrode conductive property which makes equipotential lines convex toward channel exit and even parallel to wall surface in near-wall region; this convex equipotential configuration results in significant physical effects such as repelling electrons, which causes the electrons to move toward the channel center, and the electrons emitted from electrodes to be remarkably accelerated, thereby increasing electron temperature in the discharge channel, etc. Furthermore, the results also indicate that the discharge current in the segmented electrode case is larger than in the non-segmented electrode case, which is qualitatively in accordance with previous experimental results.
Keywords:Hall thruster   electron-wall interaction   segmented electrodes   particle simulation
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