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Particle-Based Plasma Simulations for an Ion Engine Discharge Chamber

机译:离子发动机放电室的基于粒子的等离子体模拟

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A particle-based model with a Monte Carlo collision model has been developed to study the plasma inside the discharge chamber of an ion engine. This model tracks five major particle types inside the discharge chamber hi detail: xenon neutrals, singly charged xenon ions, doubly charged xenon ions, secondary electrons, and primary electrons. Both electric and magnetic field effects are included in the calculation of the charged particle's motion. The electric fields inside the discharge chamber are computed using a new approach. Also, detailed particle collision mechanisms are enabled. Validation of this computational model has been made on NASA's three-ring Solar Electric Propulsion Technology Application Readiness Program discharge chamber, at the 2.29 kW input power, 1.76 A beam current, and 1100 V beam voltage operating condition. Comparisons of numerical simulation results with experimental measurements are found to have good agreement. The computed ion beam current differs from experiments by 1% and the computed discharge current differs from experiments by 22%. The plasma ion production cost compares within 7% and the beam ion production cost compares within 16% of the experimental values. The overall computed thruster efficiency is found to differ from experiments by 11 %. In addition, steady-state results are given for particle number density distributions, kinetic energy, particle energy loss mechanisms, and current density collected at the chamber walls.
机译:已经开发出具有蒙特卡洛碰撞模型的基于粒子的模型,以研究离子发动机放电室内的等离子体。该模型详细跟踪了放电室内的五种主要颗粒类型:氙中性离子,单电荷氙离子,双电荷氙离子,二次电子和一次电子。带电粒子运动的计算中包括电场效应和磁场效应。放电室内的电场是使用新方法计算的。而且,启用了详细的粒子碰撞机制。在NASA的三环太阳能推进技术应用准备程序放电室中,在2.29 kW输入功率,1.76 A束电流和1100 V束电压工作条件下,对该计算模型进行了验证。发现数值模拟结果与实验测量值的比较具有很好的一致性。计算出的离子束电流与实验相差1%,计算出的放电电流与实验相差22%。等离子体离子的生产成本在实验值的7%之内,而离子束的生产成本在实验值的16%之内。发现整体计算的推进器效率与实验相差11%。此外,还给出了稳态的结果,这些结果是颗粒数密度分布,动能,颗粒能量损失机理以及在腔室壁处收集的电流密度的结果。

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  • 来源
    《Journal of propulsion and power》 |2010年第4期|P.673-688|共16页
  • 作者单位

    Tech-X Corporation, Boulder, Colorado 80303 5621 Arapahoe Avenue, Suite A. Member AIAA;

    rnWright State University, Dayton, Ohio 45435 Mechanical and Materials Engineering Department, 209 Russ Engineering Center. Associate Fellow AIAA;

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