首页> 外文OA文献 >Cross-field potential hill arisen eccentrically in toroidal electron cyclotron resonance plasmas in the Low Aspect ratio Torus Experiment device to regulate electron and ion flows from source to boundary
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Cross-field potential hill arisen eccentrically in toroidal electron cyclotron resonance plasmas in the Low Aspect ratio Torus Experiment device to regulate electron and ion flows from source to boundary

机译:低纵横比圆环面中的环形电子回旋共振等离子体中偏心出现的跨场电势峰,用于调节从源到边界的电子和离子流

摘要

We have investigated the electron and ion flows in toroidal electron cyclotron resonance (ECR) plasmas maintained by a 2.45 GHz microwave power around 1 kW under a simple toroidal field in the low aspect ratio torus experiment (LATE) device. We have found that a vertically uniform ridge of electron pressure that also constitutes the source belt of electron impact ionization is formed along just lower field side of the ECR layer and a cross-field potential hill (Vs ≅ 30 V while Te ≅ 10 eV), eccentrically shifted toward the corner formed by the top panel and the ECR layer, arises. Combination of the hill-driven E×B drift and the vertical drift due to the field gradient and curvature, being referred to as vacuum toroidal field (VTF) drift, realizes steady flows of electrons and ions from the source to the boundary. In particular, the ions, of which VTF drift velocity is much slower than the electron VTF drift velocity near the source belt, are carried by the E×B drift around the hill to the vicinity of the top panel, where the ion VTF drift is enhanced on the steep down slope of potential toward the top panel. On the other hand the electron temperature strongly decreases in this area. Thus the carrier of VTF drift current is replaced from the electrons to the ions before the top panel, enabling the current circulation through the top and bottom panels and the vessel (electrons mainly to the bottom and ions mainly to the top) that keeps the charge neutrality very high. A few percent of electrons from the source turn around the hill by 360 degree and reentry the source belt from the high field side as seed electrons for the impact ionization, keeping the discharge stable.
机译:我们已经在低纵横比圆环实验(LATE)装置中的简单环形场下研究了由1.45 GHz微波功率在1 kW附近维持的环形电子回旋共振(ECR)等离子体中的电子和离子流。我们发现,沿着ECR层的较低场侧和跨场电势山峰(Vs≅30 V,而Te≅10 eV)形成了垂直均匀的电子压力脊,该脊也构成了电子碰撞电离的源带。偏心地移向由顶板和ECR层形成的角。由场梯度和曲率引起的由山驱动的E×B漂移和垂直漂移的组合被称为真空环形场(VTF)漂移,实现了电子和离子从源到边界的稳定流动。特别是,其VTF漂移速度比源带附近的电子VTF漂移速度要慢得多的离子,是由E×B漂移围绕山丘到达顶板附近的,此处的离子VTF漂移为在朝向顶部面板的陡峭的下降坡度上得到增强。另一方面,该区域的电子温度急剧下降。因此,VTF漂移电流的载流子从电子转移到顶板之前的离子,从而使电流循环通过顶板和底板以及保持电荷的容器(电子主要到达底部,离子主要到达顶部)中立性很高。来自源的百分之几的电子绕山丘旋转360度,并从高电场侧重新进入源带,作为种子电子进行碰撞电离,从而保持放电稳定。

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