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Utilization of collinear ECE detection/ECRH heating for active stabilization of plasma instabilities

机译:采用共线eCE检测/ ECRH加热以激活等离子体稳定性的主动稳定

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Experiments on TEXTOR have successfully demonstrated the proof of principle [1] of using Electron Cyclotron Emission (ECE) measured along the Electron Cyclotron Resonance Heating (ECRH) line-of-sight [2] for the control of magnetohydrodynamic (MHD) modes. This work, which was done with a quasi-optical system, motivates the further development and implementation of a similar, but in-waveguide system for detection and control of Neoclassical Tearing Mode (NTM) in larger fusion machines. Progress on the implementation of such a system on ASDEX-Upgrade [3], based on waveguides equipped with a Fast Directional Switch (FADIS), is presented. Since FADIS, will be installed at ASDEX, to switch the gyrotron power between different launchers [4], FADIS can also be employed as a frequency filter serving the purpose of separating a low-power ECE signal from the high power ECRH radiation as required in the co-aligned ECE-ECRH setup [5]. Because additional absorptive filtering is required after the FADIS ECE output in [5] and [6] a non resonant two-beam Mach-Zehnder-type interferometer was chosen. This system has been built and partially tested.
机译:造修仪的实验已成功地证明了使用沿着电子回旋谐振加热(ECRH)视线[2]测量的电子回流发射(ECE)的原理[1]的证据,以控制磁性信息动力学(MHD)模式。这项工作是用准光学系统完成的,激励了一种类似但波导系统的进一步开发和实现,用于检测和控制较大融合机中的新古典撕裂模式(NTM)。提出了基于配备有快速定向开关(FADIS)的ASDEX升级[3]的这种系统的实施进展。由于FADIS将安装在ASDEX上,在不同发射器之间切换Gyrotron电源[4],FADIS也可用作频率滤波器,该频率滤波器根据需要将低功率ECE信号与高功率ECRH辐射分离共调配的ECE-ECRH设置[5]。因为在[5]和[6]中的FADIS ECE输出之后需要额外的吸收滤波,所以选择了非谐振双梁Mach-Zehnder型干涉仪。该系统已构建和部分测试。

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