分析倒火球鞘层等离子体共振的双流模型形式

IF 4.6 2区 物理与天体物理 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Subham Dutta , Johannes Gruenwald , Pralay Kumar Karmakar
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引用次数: 0

摘要

在由电子-离子流体组成的广义流体动力学等温模型的框架下,对倒火球(IFB)系统鞘层等离子体共振(SPR)进行了半解析研究。它结合了本构离子流体粘度、种间碰撞和几何曲率效应。首次研究了阳极(空心,网状)IFB与传统的规则电极(固体,光滑)火球的阴极-等离子体排列的SPR稳定性。在给定的电势下,SPR在被等离子体护套包围的球形电极附近发展。采用标准球面线性正态分析方法,系统地推导了具有不同等离子体多参数色散系数的广义线性四次色散关系。DR根的数学构造证实只存在一种可行的非零频率模式(出现在IFB中)。本文对该DR根进行了分析和数值研究。由于鞘层等离子体边界处的内部反射,由此产生的SPR在IFB等离子体中产生了被捕获的声波动。此外,SPR特性随等离子体密度和粘度的变化也有明显的参数变化。举例分析了SPR激发及其随后在ifb中向集体驻波样模式过渡的局部条件。我们的研究结果与先前报道的驻波样特征模态(瞬变)的SPR实验观测结果的公平证实了我们提出的研究的实际可靠性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A bifluidic model formalism analyzing sheath plasma resonance in inverted fireballs
The sheath plasma resonance (SPR) in an inverted fireball (IFB) system is semi-analytically investigated in the framework of a generalized hydrodynamic isothermal model formalism comprising of electron–ion fluids. It incorporates the constitutive ionic fluid viscosity, inter-species collisions, and geometric curvature effects. The SPR stability is investigated for an anodic (hollow, meshed) IFB for the first time against the traditional cathode-plasma arrangements of regular electrode (solid, smooth) fireballs. The SPR develops in the vicinity of a spherical electrode enclosed by a plasma sheath amid a given electric potential. A generalized linear quartic dispersion relation (DR) with diverse plasma multi-parametric dispersion coefficients is methodically derived using a standard spherical linear normal mode analysis. The mathematical construct of the DR roots confirms that there exists only one feasible nonzero frequency mode (emerging in the IFB). This DR root is studied both analytically and numerically. This consequent SPR creates trapped acoustic fluctuations in the IFB plasmas because of the internal reflections at the sheath plasma boundary. Also, sensible parametric changes in the SPR characteristics, with both plasma density and viscosity, are seen. A local condition for the SPR excitation and its subsequent transition to collective standing wave-like patterns in the IFBs is illustratively analyzed. A fair corroboration of our investigated results with the previously reported SPR experimental observations of standing wave-like eigenmode patterns (evanescent) validates the practical reliability of our proposed study.
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来源期刊
Results in Physics
Results in Physics MATERIALS SCIENCE, MULTIDISCIPLINARYPHYSIC-PHYSICS, MULTIDISCIPLINARY
CiteScore
8.70
自引率
9.40%
发文量
754
审稿时长
50 days
期刊介绍: Results in Physics is an open access journal offering authors the opportunity to publish in all fundamental and interdisciplinary areas of physics, materials science, and applied physics. Papers of a theoretical, computational, and experimental nature are all welcome. Results in Physics accepts papers that are scientifically sound, technically correct and provide valuable new knowledge to the physics community. Topics such as three-dimensional flow and magnetohydrodynamics are not within the scope of Results in Physics. Results in Physics welcomes three types of papers: 1. Full research papers 2. Microarticles: very short papers, no longer than two pages. They may consist of a single, but well-described piece of information, such as: - Data and/or a plot plus a description - Description of a new method or instrumentation - Negative results - Concept or design study 3. Letters to the Editor: Letters discussing a recent article published in Results in Physics are welcome. These are objective, constructive, or educational critiques of papers published in Results in Physics. Accepted letters will be sent to the author of the original paper for a response. Each letter and response is published together. Letters should be received within 8 weeks of the article''s publication. They should not exceed 750 words of text and 10 references.
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