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Time-resolved laser-induced fluorescence diagnostics for electric propulsion and their application to breathing mode dynamics

机译:用于电动推进的时间分辨激光诱导的荧光诊断及其在呼吸模式动态的应用

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摘要

Several techniques have been developed recently for performing time-resolved laser-induced fluorescence (LIF) measurements in oscillating plasmas. One of the primary applications is characterizing plasma fluctuations in devices like Hall thrusters used for space propulsion. Optical measurements such as LIF are nonintrusive and can resolve properties like ion velocity distribution functions with high resolution in velocity and physical space. The goals of this paper are twofold. First, the various methods proposed by the community for introducing time resolution into the standard LIF measurement of electric propulsion devices are reviewed and compared in detail. Second, one of the methods, the sample-hold technique, is enhanced by parallelizing the measurement hardware into several signal processing channels that vastly increases the data acquisition rate. The new system is applied to study the dynamics of ionization and ion acceleration in a commercial BHT-600 Hall thruster undergoing unforced breathing mode oscillations in the 44–49 kHz range. A very detailed experimental picture of the common breathing mode ionization instability emerges, in close agreement with established theory and numerical simulations.
机译:最近已经开发了几种技术,用于执行振荡等离子体中的时间分辨激光诱导的荧光(LIF)测量。其中一个主要应用是在用于空间推进器的霍尔推进器等设备中表征等离子体波动。 LEF的光学测量是不可取的,并且可以在速度和物理空间中具有高分辨率的离子速度分布函数等特性来解决。本文的目标是双重的。首先,综合地提出用于将时间分辨率引入电力推进装置的标准LIF测量的各种方法进行详细介绍。其次,通过将测量硬件并行化为大大提高数据采集率的信号处理信道来增强样本保持技术的方法之一。应用新系统来研究在44-49 kHz范围内的商业BHT-600霍尔推进器中的电离和离子加速度的动态和离子加速度。在与已建立的理论和数值模拟的密切协议密切一致中,普通呼吸模式电离不稳定的一个非常详细的实验图像出现。

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