Experimental study of core MHD behavior and novel algorithm of rational surface detection based on profile reflectometry in EAST

Author:

Ye Kaixuan,Zhou Zhen,Zhang Tao,Ma Jiuyang,Wang Yumin,Li GongshunORCID,Geng Kangning,Wu MingfuORCID,Wen Fei,Huang Jia,Zhang Yang,Shao Lin Ming,Yang Shuqi,Zhong Fubin,Gao Shanlu,Yu Lin,Zhou Ziqiang,Xiang Haoming,Han Xiang,Zhang Shoubiao,Li Guoqiang,Gao Xiang

Abstract

Abstract Microwave reflectometry is a powerful diagnostic that can measure the density profile and localized turbulence with high spatial and temporal resolution and will be used in ITER, so the understanding of the influence of plasma perturbations on the reflect signal is important. The characteristics of the reflect signal from profile reflectometry, the time-of-fight (TOF) signal to the MHD instabilities are investigated in EAST. Using a 1D full-wave simulation code by the FDTD method, it is well validated that the local density flattening could induce the discontinuity of the simulated TOF signal and an obvious change of reflect amplitude. Experimental TOF signals associated with different types of MHD instabilities (sawtooth, sawtooth precursors and tearing mode) are studied in detail and show agreement with the simulation. Two new improved algorithms for detecting and localizing the radial positions of the low-order rational surface, the Cross-correlation and Gradient Threshold (CGT) method and the 2D Convolutional Neural Network approach (CNN) are presented for the first time. It is concluded that the TOF signal analysis from profile reflectometry can provide a straightforward and localized measurement of the plasma perturbation from the edge to the core simultaneously and may be a complement or correction to the q-profile control, which will be beneficial for the advanced tokamak operation.

Funder

National Natural Science Foundation of China

Open Fund of Magnetic Confinement Laboratory of Anhui Province

Postdoctoral Research Foundation of China

National Magnetic Confinement Fusion Science Program of China under Contracts

Director Funding of Hefei Institutes of Physical Science, Chinese Academy of Sciences

Science Foundation of Institute of Plasma Physics, Chinese Academy of Sciences

National Key Research and Development Program of China

Publisher

IOP Publishing

Subject

Condensed Matter Physics

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