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The role of sheath and acceptance angle in front of a retarding field energy analyzer for plasma flow analysis

机译:护套和接受角在用于等离子体流分析的延迟场能量分析仪前面的作用

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摘要

Measurements of plasma flow are of key interest in a number of plasma environments and applications. In laboratory magnetized plasmas, the directional Langmuir or Mach probe is a well-proven ‘in-situ’ diagnostic tool to obtain the flow velocity. However, in non-magnetized or weakly magnetized plasmas, this method does not readily yield reliable velocity measurements, as it has been shown by numerical and experimental studies that the collection of upstream ions to the rearward probe surface can be significant. In this study, we utilize the analysis of data from 3D PIC simulations of ion velocity distributions in the vicinity of a negatively biased object embedded in a collision-less, source-free plasma with and without flow. The simulations allow us to study how the grounded probe housing of a retarding field ion energy analyzer (RFEA) affects the distribution of ions and their collection at different angles with a flowing, electropositive plasma. Comparisons are carried out with RFEA measurements in an inductively coupled helicon plasma.
机译:在许多等离子体环境和应用中,等离子体流量的测量是至关重要的。在实验室磁化等离子体中,定向Langmuir或Mach探头是获得流速的公认的“原位”诊断工具。但是,在未磁化或弱磁化的等离子体中,此方法无法轻易获得可靠的速度测量结果,因为数值和实验研究已经表明,向后探针表面收集上游离子可能很重要。在这项研究中,我们利用来自3D PIC模拟的离子速度分布的数据分析,该离子速度分布在嵌入和嵌入有无流动且无碰撞的无碰撞等离子体中的负偏置物体附近。通过仿真,我们可以研究延迟场离子能量分析仪(RFEA)的接地探针外壳如何通过流动的正电等离子体影响离子的分布及其在不同角度的收集。比较是在电感耦合螺旋等离子体中通过RFEA测量进行的。

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