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The eddy current probe array for Keda Torus eXperiment.

Authors :
Zichao Li
Hong Li
Cui Tu
Jintong Hu
Wei You
Bing Luo
Mingsheng Tan
Yolbarsop Adil
Yanqi Wu
Biao Shen
Bingjia Xiao
Ping Zhang
Wenzhe Mao
Hai Wang
Xiaohui Wen
Haiyang Zhou
Jinlin Xie
Tao Lan
Adi Liu
Weixing Ding
Source :
Review of Scientific Instruments; Nov2016, Vol. 87 Issue 11, p113503-1-113503-8, 8p, 1 Color Photograph, 4 Diagrams, 1 Chart, 9 Graphs
Publication Year :
2016

Abstract

In a reversed field pinch device, the conductive shell is placed as close as possible to the plasma so as to balance the plasma during discharge. Plasma instabilities such as the resistive wall mode and certain tearing modes, which restrain the plasma high parameter operation, respond closely with conditions in the wall, in essence the eddy current present. Also, the effect of eddy currents induced by the external coils cannot be ignored when active control is applied to control instabilities. One diagnostic tool, an eddy current probe array, detects the eddy current in the composite shell. Magnetic probes measuring differences between the inner and outer magnetic fields enable estimates of the amplitude and angle of these eddy currents. Along with measurements of currents through the copper bolts connecting the poloidal shield copper shells, we can obtain the eddy currents over the entire shell. Magnetic field and eddy current resolutions approach 2 G and 6 A, respectively. Additionally, the vortex electric field can be obtained by eddy current probes. As the conductivity of the composite shell is high, the eddy current probe array is very sensitive to the electric field and has a resolution of 0.2 mV/cm. In a bench test experiment using a 1/4 vacuum vessel, measurements of the induced eddy currents are compared with simulation results based on a 3D electromagnetic model. The preliminary data of the eddy currents have been detected during discharges in a Keda Torus eXperiment device. The typical value of toroidal and poloidal eddy currents across the magnetic probe coverage rectangular area could reach 3.0 kA and 1.3 kA, respectively. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00346748
Volume :
87
Issue :
11
Database :
Complementary Index
Journal :
Review of Scientific Instruments
Publication Type :
Academic Journal
Accession number :
119959121
Full Text :
https://doi.org/10.1063/1.4966988