电力推进用碘电子回旋共振等离子体源

None Li Xin, None Zeng Ming, None Liu Hui, None Ning Zhong-Xi, None Yu Da-Ren
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引用次数: 0

摘要

近年来,随着商业航天事业的飞速发展,对低功率、低成本推进系统的需求越来越迫切。与常规化学推进相比,电力推进具有更高的比冲。与传统的氙推进剂相比,碘推进剂不需要高压储存,价格便宜,且接近氙的相对原子质量和电离能。电子回旋共振源具有无内部电极、低压电离、等离子体密度高、结构紧凑等优点,适用于低功率电力推进。因此,研究低功率碘推进剂电子回旋共振等离子体源具有重要意义。本研究设计了一套具有平衡稳定的碘蒸气输出的耐腐蚀进料系统。然后对耐碘腐蚀电子回旋共振推力器进行了完整的设计。采用耐腐蚀的同轴腔结构将微波送入推力器,并将通道磁场转变为尖角场,以产生更多的电子回旋共振层。最后,成功地进行了联合点火实验,展示了世界上第一个利用电子回旋共振电离碘推进剂的等离子体源,可用于电力推进。实验、静磁场、微波电场分布分析表明,低功率、低流量下的不稳定等离子体羽流闪烁是由普通波电子等离激元共振加热模式与非普通波电子回旋共振加热模式转换引起的。高流速下电离速率的降低是由碘推进剂的电子损失、壁损失和电负性引起的。在此基础上,提出了改进方案。等离子体源放电后无明显损伤,具有长寿命的潜力。初步证明了低功率碘推进剂的低功率电子回旋共振电推进方案是可行的。
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Iodine Electron Cyclotron Resonance Plasma Source for Electric Propulsion
With the rapid development of commercial space in recent years, the low-power and low-cost propulsion systems are needed more and more urgently. Compared with conventional chemical propulsion, electric propulsion has a higher specific impulse. Compared with the conventional xenon propellant, iodine propellant that does not require high pressure storage, is cheap and close to the relative atomic mass and ionization energy of xenon. Electron cyclotron resonance source has the advantages of no internal electrode, low pressure ionization, high plasma density and compact structure, which is suitable for low power electric propulsion. Therefore, the study of low power iodine propellant electron cyclotron resonance plasma source is of great significance. In this study, a set of corrosion-resistant feed system with balanced and stable output of iodine vapor is designed. Then the iodine-corrosion-resistant electron cyclotron resonance thruster is designed completely. A corrosion-resistant coaxial cavity structure is used to feed the microwave to the thruster, and the channel magnetic field is changed into a cusped field to generate more electron cyclotron resonance (ECR) layers. Finally, the combined ignition experiment is successfully conducted, showing the first plasma source using electron cyclotron resonance to ionize iodine propellant that can be used for electric propulsion in the world. The analyses of experiments, static magnetic field, microwave electric field distribution show that the unstable plasma plume scintillation at low power and low flow is caused by the conversion between ordinary wave electron plasmon resonance heating mode and extraordinary wave electron cyclotron resonance heating mode. The decrease of ionization rate at a high flow rate is caused by electron loss, wall loss and electronegativity of iodine propellant. Based on this principle, an improvement scheme is proposed. The plasma source has no obvious damage after discharge, which indicates that it has the potential of long life. This work preliminarily proves that the low power electron cyclotron resonance electric propulsion scheme of low power iodine propellant is feasible.
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