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Impact of Optimized Electrodes on Generation Characteristics of Vacuum-Discharge Plasmas

机译:优化电极对真空放电等离子体产生特性的影响

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Electrode structures have an important effect on the electric-field strength at the cathode tip in vacuum. Effectively increasing the electric-field strength at the cathode tip can contribute to increasing the density and energy of vacuum-arc discharge plasmas. In this paper, a tubular electrode is designed and employed as the anode. The electric-field distribution of the electrode was simulated using the software package Maxwell 3-D. Through a series of simulated experiments, the factors that affect the electric-field distribution were explored, including the length of the tubular anode and the relative positions of the electrodes. In addition, the effect of an insulator situated between the cathode and the anode and optimal designs for the electrode structures are discussed. The plasma parameters and thrust were measured using a Langmuir probe and a piezoelectric thin-film sensor, respectively. The experimental and simulated results indicate that optimizing the electrode structure can effectively reduce the weight of the electrodes, increase the field strength at the cathode tip, and generate higher plasma density and greater thrust.
机译:电极结构对真空中阴极尖端的电场强度具有重要影响。有效地增加阴极尖端处的电场强度可有助于增加真空电弧放电等离子体的密度和能量。在本文中,设计了管状电极并将其用作阳极。使用软件包Maxwell 3-D模拟电极的电场分布。通过一系列的模拟实验,探讨了影响电场分布的因素,包括管状阳极的长度和电极的相对位置。此外,还讨论了位于阴极和阳极之间的绝缘子的效果以及电极结构的最佳设计。分别使用Langmuir探针和压电薄膜传感器测量等离子体参数和推力。实验和模拟结果表明,优化电极结构可以有效减轻电极的重量,增加阴极尖端的场强,并产生更高的等离子体密度和更大的推力。

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