Observation and Modeling of Optical Emission Patterns and Their Transitions in a Penning Discharge

C. Klepper, R. Hazelton, F. Barakat, M. D. Keitz, J. Verboncoeur
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引用次数: 6

Abstract

A Penning discharge tube has been used as the excitation source for optical detection of gaseous species concentrations in a neutral gas. This type of diagnostic has been primarily used in magnetic fusion energy experiments for the detection of minority species in the effluent gas (e.g., for helium detection in a deuterium background). Recent innovations (US Patent no. 6351131, granted February 26, 2002) have allowed for extension of the operation range from 1 Pa to as high as 100 Pa and possibly beyond. This is done by dynamically varying the gauge magnetic field and voltage to keep the optical signals nearly constant (or at least away from a nonlinear dependence on the pressure). However, there are limitations to this approach, because the Penning discharge can manifest itself in a number of modes, each exhibiting a different spatial emission pattern. As a result, varying the discharge parameters can cause the gauge to undergo transitions between these modes, disrupting any intended monotonic dependence of the overall emission on the varied parameter and hence any predicable impact on the emission. This paper discusses some of the modes observed experimentally using video imaging of the discharge. It also presents a first successful application, a particle-in-cell (PIC) code, to simulate these modes and a mode transition. The hope is that a good understanding of the physics involved in the mode transitions may allow for methods of either avoiding or suppressing such transitions. This would aid in broadening the use of this plasma-based sensor technology.
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潘宁放电中光发射模式及其跃迁的观测与建模
用潘宁放电管作为激发源,光学检测了中性气体中的气体种类浓度。这种类型的诊断主要用于磁聚变能实验,以检测流出气体中的少数物种(例如,用于在氘背景中检测氦)。近期创新(美国专利号:6351131(2002年2月26日批准)允许将工作范围从1pa扩展到高达100pa,甚至可能更高。这是通过动态改变仪表磁场和电压来实现的,以保持光学信号几乎恒定(或至少远离对压力的非线性依赖)。然而,这种方法存在局限性,因为潘宁放电可以以多种模式表现出来,每种模式都表现出不同的空间发射模式。因此,改变放电参数可能会导致仪表在这些模式之间发生转换,从而破坏总体排放对变化参数的任何预期单调依赖性,从而破坏对排放的任何可预测影响。本文讨论了利用放电视频成像实验观察到的几种模式。它还提出了第一个成功的应用,粒子在细胞(PIC)代码,模拟这些模式和模式转换。希望对模式转换中涉及的物理有一个很好的理解,可以允许避免或抑制这种转换的方法。这将有助于扩大等离子体传感技术的应用范围。
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