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Modeling and Development of the RF-Controlled Hollow Cathode Concept

机译:射频控制空心阴极概念的建模与开发

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A promising new hollow cathode concept for high-power, long-lifetime electric thruster applications is explored using finite-element analysis to inform an experiment presently being constructed. This RF-Controlled Hollow Cathode concept adds radio-frequency power to a large-diameter cathode. To explore the concept's feasibility and behavior, numerical simulations were performed with a simplified two-dimensional model which captures the plasma, the thermionic emission, and the added RF power. It was found that by increasing the RF power, the centerline plasma density profile increased and its peak shifted upstream, resulting in enhanced thermionic emission from a greater emitter area, and thus supporting the promise of the concept for high-power, long-lifetime applications. It was also observed that a pronounced "jump" occurs in the plasma density and other parameters at a critical RF power, and its occurrence is strongly dependent on gas pressure. This beneficial jump behavior was attributed to a cavity resonance effect caused by the RF waves constructively interfering to sharply increase the electric field amplitude at a critical RF electric field phase and RF-refiecting plasma density depth.
机译:利用有限元分析探索了高功率,长寿命电力推进器应用的一个有希望的新型空心阴极概念,以通知目前正在构建的实验。该RF控制的空心阴极概念将射频功率增加到大直径阴极。为了探讨概念的可行性和行为,用简化的二维模型进行数值模拟,其捕获等离子体,热离子发射和添加的RF功率。结果表明,通过增加RF功率,中心线等离子体密度曲线增加,其峰值移动上游偏移,导致来自更大的发射器区域的增强热量发射,从而支持高功率,长寿命应用的承诺。还观察到一个显着的“跳跃”在一个临界的射频功率的等离子体密度和其他参数发生,并且其发生强烈地依赖于气体压力。这种有益的跳跃行为归因于由RF波引起的腔谐振效应,其建设性地干扰急性地增加临界RF电场相位和RF-Refiect等离子体密度深度的电场幅度。

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