Power Compensation for ICRF Heating in EAST

被引:0
|
作者
陈根 [1 ]
秦成明 [1 ]
毛玉周 [1 ]
赵燕平 [1 ]
袁帅 [1 ]
张新军 [1 ]
机构
[1] Institute of Plasma Physics, Chinese Academy of Sciences
基金
中国国家自然科学基金;
关键词
EAST; ICRF heating; power compensation;
D O I
暂无
中图分类号
TL631.24 [];
学科分类号
摘要
The source system covering a working frequency range of 24 MHz to 70 MHz with a total maximum output power of 12 MW has already been fabricated for Ion Cyclotron Range of Frequency(ICRF) heating in EAST from 2012. There are two continuous wave(CW) antennas consisting of four launching elements each fed by a separate 1.5 MW transmitter. Due to the strong mutual coupling among the launching elements, the injection power for launching elements should be imbalance to keep the k||(parallel wave number) spectrum of the launcher symmetric for ICRF heating. Cross power induced by the mutual coupling will also induce many significant issues,such as an uncontrollable phase of currents in launching elements, high voltage standing wave ratio(VSWR), and impedance mismatching. It is necessary to develop a power compensation system for antennas to keep the power balance between the feed points. The power balance system consists of two significant parts: a decoupler and phase control. The decoupler helps to achieve ports isolation to make the differential phase controllable and compensate partly cross power. After that, the differential phase of 0 or π will keep the power balance of two feed points completely. The first power compensation system consisting of four decouplers was assembled and tested for the port B antenna at the working frequency of 35 MHz. With the application of the power compensation system, the power balance, phase feedback control, and voltage standing wave ratio(VSWR) had obviously been improved in the 2015 EAST campaign.
引用
收藏
页码:870 / 874
页数:5
相关论文
共 50 条
  • [31] HIGH-POWER ICRF HEATING IN TOKAPOLE-II
    BIDDLE, AP
    SPROTT, JC
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1979, 24 (08): : 1063 - 1063
  • [32] HIGH-POWER ICRF HEATING ON THE DIVERTOR TOKAMAK ASDEX
    STEINMETZ, K
    FUSSMANN, G
    GRUBER, O
    NIEDERMEYER, H
    MULLER, ER
    RYTER, F
    WAGNER, F
    WESNER, F
    PLASMA PHYSICS AND CONTROLLED FUSION, 1986, 28 (1A) : 235 - 238
  • [33] Special section on the physics and technology of plasma heating by ICRF power
    Noterdaeme, Jean-Marie
    Van Eester, Dirk
    NUCLEAR FUSION, 2006, 46 (07) : S385 - S386
  • [34] ICRF HEATING ON ATF
    BAITY, FW
    HOFFMAN, DJ
    OWENS, TL
    AIP CONFERENCE PROCEEDINGS, 1985, (129) : 32 - 35
  • [35] ICRF HEATING IN MACROTOR
    TAYLOR, RJ
    MORALES, GJ
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1979, 24 (08): : 992 - 992
  • [36] ICRF HEATING IN STM
    TALMADGE, S
    SAMEC, TK
    LAZAR, NH
    AIP CONFERENCE PROCEEDINGS, 1985, (129) : 103 - 106
  • [37] Neutron Yields Based on Transport Calculation in EAST ICRF Minority Heating Plasmas
    李晓玲
    万宝年
    郭智荣
    钟国强
    胡立群
    林士耀
    张新军
    丁斯晔
    吕波
    Plasma Science and Technology, 2013, (05) : 411 - 416
  • [38] Observation of direct power deposition of ICRF in EAST plasma boundary
    Li, X. L.
    Li, Y. L.
    Xu, G. S.
    Zhang, H.
    Xu, J.
    Li, A.
    Xiao, C. J.
    Mao, S. T.
    Liang, R. R.
    Zhang, L.
    Gao, W.
    Zhang, X. J.
    RADIATION EFFECTS AND DEFECTS IN SOLIDS, 2021, 176 (11-12): : 1076 - 1091
  • [39] ICRF HEATING THEORY
    PERKINS, FW
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 1984, 12 (02) : 53 - 63
  • [40] Neutron Yields Based on Transport Calculation in EAST ICRF Minority Heating Plasmas
    Li Xiaoling
    Wan Baonian
    Guo Zhirong
    Zhong Guoqiang
    Hu Liqun
    Lin Shiyao
    Zhang Xinjun
    Ding Siye
    Lu Bo
    PLASMA SCIENCE & TECHNOLOGY, 2013, 15 (05) : 411 - 416