Mode transitions in a magnetically shielded Hall thruster. II. Stability criterion

IF 2.7 3区 物理与天体物理 Q2 PHYSICS, APPLIED Journal of Applied Physics Pub Date : 2024-08-02 DOI:10.1063/5.0205985
Benjamin A. Jorns, Matthew Byrne, Parker Roberts, Leanne Su, Ethan Dale, Richard R. Hofer
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Abstract

A stability criterion is derived for mode transitions in the discharge current oscillations of a magnetically shielded Hall thruster. The two-equation model evaluated in Paper I for these large-amplitude (>100% background), low-frequency (<25 kHz) current oscillations is generalized and then validated with measurements from a 9 kW class test article. It is shown that the model can re-create quantitatively trends in both oscillation amplitude and frequency with discharge voltage and current. The validated model is non-dimensionalized and applied to derive an analytical stability criterion for the onset of large-amplitude oscillations. The resulting expression depends on several properties, including discharge current, discharge voltage, neutral transit time in the channel, length of the acceleration zone, magnetic field strength, and channel area. The criterion is leveraged to inform two mitigation strategies—changing magnetic field strength and controlling anode temperature— for adjusting the stability margin of the thruster. The criterion is also employed to motivate a physical explanation for why mode transitions occur and, in turn, why the stability margin differs between shielded and unshielded thrusters.
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磁屏蔽霍尔推进器中的模式转换。II.稳定性标准
针对磁屏蔽霍尔推进器放电电流振荡中的模式转换,推导出了一种稳定性准则。论文 I 评估了这些大振幅(>100% 背景)、低频率(<25 kHz)电流振荡的双方程模型,并对其进行了归纳,然后用 9 kW 级试验品的测量结果进行了验证。结果表明,该模型可以定量地再现振荡幅度和频率随放电电压和电流变化的趋势。经过验证的模型被非尺寸化,并应用于推导大振幅振荡开始时的分析稳定性准则。由此得出的表达式取决于多个属性,包括放电电流、放电电压、中性点在通道中的传输时间、加速区长度、磁场强度和通道面积。利用该准则可为两种缓解策略提供信息--改变磁场强度和控制阳极温度--以调整推进器的稳定裕度。该标准还用于解释为何会发生模式转换,以及为何屏蔽和非屏蔽推进器的稳定裕度不同。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Applied Physics
Journal of Applied Physics 物理-物理:应用
CiteScore
5.40
自引率
9.40%
发文量
1534
审稿时长
2.3 months
期刊介绍: The Journal of Applied Physics (JAP) is an influential international journal publishing significant new experimental and theoretical results of applied physics research. Topics covered in JAP are diverse and reflect the most current applied physics research, including: Dielectrics, ferroelectrics, and multiferroics- Electrical discharges, plasmas, and plasma-surface interactions- Emerging, interdisciplinary, and other fields of applied physics- Magnetism, spintronics, and superconductivity- Organic-Inorganic systems, including organic electronics- Photonics, plasmonics, photovoltaics, lasers, optical materials, and phenomena- Physics of devices and sensors- Physics of materials, including electrical, thermal, mechanical and other properties- Physics of matter under extreme conditions- Physics of nanoscale and low-dimensional systems, including atomic and quantum phenomena- Physics of semiconductors- Soft matter, fluids, and biophysics- Thin films, interfaces, and surfaces
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