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Electromagnetic diagnostic system for the Keda Torus eXperiment.

Authors :
Cui Tu
Adi Liu
Zichao Li
Mingsheng Tan
Bing Luo
Wei You
Chenguang Li
Wei Bai
Chenshuo Fu
Fangcheng Huang
Bingjia Xiao
Biao Shen
Tonghui Shi
Dalong Chen
Wenzhe Mao
Hong Li
Jinglin Xie
Tao Lan
Weixing Ding
Chijin Xiao
Source :
Review of Scientific Instruments. 2017, Vol. 88 Issue 9, p1-9. 9p. 7 Color Photographs, 2 Black and White Photographs, 5 Diagrams, 2 Charts, 9 Graphs.
Publication Year :
2017

Abstract

Asystem for electromagnetic measurementswas designed and installed on theKeda Torus eXperiment (KTX) reversed field pinch device last year. Although the unique double-C structure of the KTX, which allows the machine to be opened easily without disassembling the poloidal field windings, makes the convenient replacement and modification of the internal inductive coils possible, it can present difficulties in the design of flux coils and magnetic probes at the two vertical gaps. Moreover, the KTX has a composite shell consisting of a 6 mm stainless steel vacuum chamber and a 1.5 mm copper shell, which results in limited space for the installation of saddle sensors. Therefore, the double- C structure and composite shell should be considered, especially during the design and installation of the electromagnetic diagnostic system (EDS). The inner surface of the vacuum vessel includes two types of probes. One type is for the measurement of the global plasma parameters, and the other type is for studying the local behavior of the plasma and operating the new saddle coils. In addition, the probes on the outer surface of the composite shell are used for measurements of eddy currents. Finally, saddle sensors for radial field measurements for feedback control were installed between the conducting shell and the vacuum vessel. The entire system includes approximately 1100 magnetic probes, 14 flux coils, 4 × 26 × 2 saddle sensors, and 16 Rogowski coils. Considering the large number of probes and limited space available in the vacuum vessel, the miniaturization of the probes and optimization of the probe distribution are necessary. In addition, accurate calibration and careful mounting of the probes are also required. The frequency response of the designed magnetic probes is up to 200 kHz, and the resolution is 1 G. The EDS, being spherical and of high precision, is one of the most basic and effective diagnostic tools of the KTX and meets the demands imposed by requirements on basic machine operating information and future studies. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00346748
Volume :
88
Issue :
9
Database :
Academic Search Index
Journal :
Review of Scientific Instruments
Publication Type :
Academic Journal
Accession number :
125440496
Full Text :
https://doi.org/10.1063/1.5003039