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Runaway electron generation as possible trigger for enhancement of magnetohydrodynamic plasma activity and fast changes in runaway beam behavior

机译:失控电子的产生可能触发增强磁流体动力学等离子体活性并快速改变失控束行为

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Peculiar phenomena were observed during experiments with runaway electrons: rapid changes in the synchrotron spot and its intensity that coincided with stepwise increases in the electron cyclotron emission (ECE) signal (cyclotron radiation of suprathermal electrons). These phenomena were initially observed in TEXTOR (Tokamak Experiment for Technology Oriented Research), where these events only occurred in the current decay phase or in discharges with thin stable runaway beams at a q = 1 drift surface. These rapid changes in the synchrotron spot were interpreted by the TEXTOR team as a fast pitch angle scattering event. Recently, similar rapid changes in the synchrotron spot and its intensity that coincided with stepwise increases in the non-thermal ECE signal were observed in the EAST (Experimental Advanced Superconducting Tokamak) runaway discharge. Runaway electrons were located around the q = 2 rational magnetic surface (ring-like runaway electron beam). During the EAST runaway discharge, stepwise ECE signal increases coincided with enhanced magnetohydrodynamic (MHD) activity. This behavior was peculiar to this shot. In this paper, we show that these non-thermal ECE step-like jumps were related to the abrupt growth of suprathermal electrons induced by bursting electric fields at reconnection events during this MHD plasma activity. Enhancement of the secondary runaway electron generation also occurred simultaneously. Local changes in the current-density gradient appeared because of local enhancement of the runaway electron generation process. These current-density gradient changes are considered to be a possible trigger for enhancement of the MHD plasma activity and the rapid changes in runaway beam behavior. (C) 2015 AIP Publishing LLC.
机译:在使用失控电子的实验过程中观察到了奇特现象:同步加速器光斑及其强度的快速变化与电子回旋加速器发射(ECE)信号(超热电子的回旋辐射)的逐步增加相一致。这些现象最初是在TEXTOR(面向技术的托卡马克实验)中观察到的,其中这些事件仅发生在电流衰减阶段或在q = 1漂移表面上带有细小的稳定失控束的放电中。同步加速器光斑中的这些快速变化被TEXTOR团队解释为快速俯仰角散射事件。最近,在EAST(实验先进超导托卡马克)失控放电中观察到同步加速器光斑及其强度的类似快速变化,与非热ECE信号的逐步增加相一致。失控电子位于q = 2有理磁表面(环状失控电子束)周围。在EAST失控放电期间,逐步的ECE信号增加,同时磁流体动力学(MHD)活动增强。此行为是此镜头特有的。在本文中,我们表明,这些非热ECE阶梯状跃迁与在MHD等离子活动期间在重新连接事件中由爆发电场引起的超热电子的突然生长有关。二次失控电子产生的增强也同时发生。由于失控电子生成过程的局部增强,出现了电流密度梯度的局部变化。这些电流密度梯度变化被认为是增强MHD等离子体活性和失控束行为快速变化的可能触发因素。 (C)2015 AIP Publishing LLC。

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