{"title":"Two-Dimensional Collisionless Weakly-Ionized Plama in Fluid Approximation","authors":"V. Ciodyak, N. Sternberg","doi":"10.1109/PPPS.2007.4345591","DOIUrl":null,"url":null,"abstract":"Summary form only given. In laboratories and various applications, plasmas are always multidimensional. In basic research experiments and in the majority of plasma processing reactors, the finite plasma cylinder is the most common plasma shape. In the diffusion limit described by the Schottky model, the two-dimensional plasma density profile for a finite cylinder of length 2L and diameter 2R is the product of the corresponding one-dimensional solutions, namely, n(x,r)/n0 = cos(pix/2L) . J0(2.4r/R). Because of this, even when the Schottky model is not applicable (such as in the cases of collisionless ions, or variable ion mobility), the representation of the plasma spatial distribution by the product of the corresponding one-dimensional solutions has remained a common approach at low gas pressures. In this presentation, numerical solutions for the two-dimensional fluid model of a collisionless weakly-ionized plasma cylinder for arbitrary aspect ratios L/R will be demonstrated. The behavior of the ionization frequency, plasma densities at the radial and axial boundaries, the spatial plasma profile, the plasma flux, as well as the entering angle of ions at the plasma boundary for a wide range of the aspect ratio will be analyzed. The obtained results w ill show that for cylindrical collisionless plasma, the spatial plasma profile cannot be represented by the product of the corresponding one-dimensional solutions. Moreover, in the limiting cases of small and large aspect ratios, the plasma distribution along the longer length (L or R) approaches the diffusion distribution, which corresponds to the highly collisional ion motion, although the ion motion in this direction is collisionless.","PeriodicalId":446230,"journal":{"name":"2007 IEEE 34th International Conference on Plasma Science (ICOPS)","volume":"4 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2007-06-17","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"2007 IEEE 34th International Conference on Plasma Science (ICOPS)","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1109/PPPS.2007.4345591","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
摘要
只提供摘要形式。在实验室和各种应用中,等离子体总是多维的。在基础研究实验和大多数等离子体处理反应器中,有限等离子体圆柱体是最常见的等离子体形状。在肖特基模型所描述的扩散极限下,长度为2L、直径为2R的有限圆柱体的二维等离子体密度分布是相应的一维解的乘积,即n(x,r)/n0 = cos(pix/2L)。j₀(2.4 R / R)。正因为如此,即使肖特基模型不适用(例如在无碰撞离子或可变离子迁移率的情况下),通过相应的一维解的乘积来表示等离子体空间分布仍然是低压下的常用方法。在本报告中,将展示任意宽高比L/R下无碰撞弱电离等离子体圆柱体二维流体模型的数值解。在宽宽比范围内,分析了电离频率、径向和轴向边界等离子体密度、等离子体空间分布、等离子体通量以及离子在等离子体边界的进入角的行为。得到的结果表明,对于圆柱形无碰撞等离子体,空间等离子体轮廓不能用相应的一维解的乘积来表示。此外,在小长径比和大长径比的极限情况下,等离子体沿较长长度(L或R)的分布接近于扩散分布,这对应于高度碰撞的离子运动,尽管该方向的离子运动是无碰撞的。
Two-Dimensional Collisionless Weakly-Ionized Plama in Fluid Approximation
Summary form only given. In laboratories and various applications, plasmas are always multidimensional. In basic research experiments and in the majority of plasma processing reactors, the finite plasma cylinder is the most common plasma shape. In the diffusion limit described by the Schottky model, the two-dimensional plasma density profile for a finite cylinder of length 2L and diameter 2R is the product of the corresponding one-dimensional solutions, namely, n(x,r)/n0 = cos(pix/2L) . J0(2.4r/R). Because of this, even when the Schottky model is not applicable (such as in the cases of collisionless ions, or variable ion mobility), the representation of the plasma spatial distribution by the product of the corresponding one-dimensional solutions has remained a common approach at low gas pressures. In this presentation, numerical solutions for the two-dimensional fluid model of a collisionless weakly-ionized plasma cylinder for arbitrary aspect ratios L/R will be demonstrated. The behavior of the ionization frequency, plasma densities at the radial and axial boundaries, the spatial plasma profile, the plasma flux, as well as the entering angle of ions at the plasma boundary for a wide range of the aspect ratio will be analyzed. The obtained results w ill show that for cylindrical collisionless plasma, the spatial plasma profile cannot be represented by the product of the corresponding one-dimensional solutions. Moreover, in the limiting cases of small and large aspect ratios, the plasma distribution along the longer length (L or R) approaches the diffusion distribution, which corresponds to the highly collisional ion motion, although the ion motion in this direction is collisionless.