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Study of electromagnetic field propagation in microwave-heated magnetoplasmas of compact ion sources

机译:紧凑型离子源在微波加热的磁等离子体中的电磁场传播研究

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This paper presents the study of electromagnetic wave propagation in anisotropic, lossy and strongly inhomogeneous magnetoplasmas of compact ECR-type ion sources. Due to the specific shape of the magnetostatic field (B-minimum configuration), no simple symmetries can be assumed: a 3D approach is then mandatory. The operating wavelength is comparable with cavity length (λRF ∼ Lc), hence the “resonator” effect of the metallic cylindrical cavity where the plasma itself is sustained by the microwaves cannot be neglected. In addition, the characteristic lengths of plasma parameters are often smaller than the wavelength, thus implying a full-wave approach in modeling and simulations. These plasmas have to be described by lossy spatially dispersive “hot” (νΦ ∼ vth) dielectric tensor in order to model the inner plasma modes conversion and plasma-waves. The paper describes in details the modeling strategy for both microwave-to-plasma coupling schemes and for advanced, microwave based diagnostics tools such as interferometry and polarimetry.
机译:本文介绍了电磁波在紧凑型ECR型离子源的各向异性,有损和强烈非均质磁浆中的传播情况。由于静磁场的特定形状(B最小配置),无法假设简单的对称性:因此必须采用3D方法。工作波长可与腔体长度(λRF〜Lc)相媲美,因此,不能忽略等离子体本身由微波维持的金属圆柱形腔体的“谐振”效应。另外,等离子体参数的特征长度通常小于波长,因此暗示了建模和仿真中的全波方法。为了对内部等离子体模式转换和等离子体波建模,必须用有损的空间色散“热”(νΦ〜vth)介电张量来描述这些等离子体。本文详细描述了微波-等离子体耦合方案以及基于微波的高级诊断工具(例如干涉测量法和极化测量法)的建模策略。

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