Volume 33 Issue 9
Sep.  2021
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Huang Ronglin, Fu Peng, Huang Liansheng, et al. Short-circuit impedance design for converter transformer of superconducting magnet power supply for CRAFT[J]. High Power Laser and Particle Beams, 2021, 33: 096001. doi: 10.11884/HPLPB202133.210088
Citation: Huang Ronglin, Fu Peng, Huang Liansheng, et al. Short-circuit impedance design for converter transformer of superconducting magnet power supply for CRAFT[J]. High Power Laser and Particle Beams, 2021, 33: 096001. doi: 10.11884/HPLPB202133.210088

Short-circuit impedance design for converter transformer of superconducting magnet power supply for CRAFT

doi: 10.11884/HPLPB202133.210088
  • Received Date: 2021-03-17
  • Rev Recd Date: 2021-07-24
  • Available Online: 2021-08-19
  • Publish Date: 2021-09-15
  • The superconducting magnet power supply for the Comprehensive Research Facility for Fusion Technology (CRAFT) has the abilities of large current steady-state operation, high power pulse operation and transient fault suppression, which is closely related to the short circuit impedance of converter transformer. On the basis of parameters of AC system and equivalent circuit model of converter transformer, the relationship between the performance of superconducting magnet power supply and the short circuit impedance of converter transformer is studied. The research shows that the small short circuit impedance is beneficial to the output voltage and the reactive power loss of superconducting magnet power supply, but the short-circuit fault current and harmonic current increase accordingly. For short-circuit impedance design for converter transformer purposes, firstly, short-circuit impedance must satisfy the transient fault suppression capability and the rated output voltage, and secondly, it is easy to suppress the high characteristic harmonic current brought by thyristor multi-phase converter for CRAFT, hence small short-circuit impedance should be chosen.
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  • [1]
    李存璞, 唐红安, 魏子栋. 2019年清洁能源开发热点回眸[J]. 科技导报, 2020, 38(1):125-136. (Li Cunpu, Tang Hongan, Wei Zidong. Clean energy in 2019—A research hotspots[J]. Technology Review, 2020, 38(1): 125-136
    [2]
    杨军, 张恩昊, 郭志恒, 等. 全球核能科技前沿综述[J]. 科技导报, 2020, 38(20):35-49. (Yang Jun, Zhang Enhao, Guo Zhiheng, et al. Recent progress of frontier nuclear energy science and technology[J]. Technology Review, 2020, 38(20): 35-49
    [3]
    李建刚. 托卡马克研究的现状及发展[J]. 物理, 2016, 45(2):88-97. (Li Jian’gang. The status and progress of tokamak research[J]. Physics, 2016, 45(2): 88-97 doi: 10.7693/wl20160203
    [4]
    高翔, 万元熙, 丁宁, 等. 可控核聚变科学技术前沿问题和进展[J]. 中国工程科学, 2018, 20(3):26-31. (Gao Xiang, Wan Yuanxi, Ding Ning, et al. Frontier issues and progress of controlled nuclear fusion science and technology[J]. Strategic Study of CAE, 2018, 20(3): 26-31
    [5]
    万宝年, 徐国胜. EAST全超导托卡马克高约束稳态运行实验研究进展[J]. 中国科学, 2019, 49:045205. (Wan Baonian, Xu Guosheng. Advances in experimental research towards high confinement and steady state operation on the experimental advanced superconducting Tokamak[J]. Science China Press, 2019, 49: 045205
    [6]
    高翔, 万宝年, 宋云涛, 等. CFETR物理与工程研究进展[J]. 中国科学, 2019, 49:045202. (Gao Xiang, Wan Baonian, Song Yuntao. Progress on CFETR physics and engineering[J]. SCIENTIA SINICA Physica, Mechanica & Astronomica, 2019, 49: 045202
    [7]
    Wan Baonian, Ding Siye, Qian Jinping, et al. Physics design of CFETR: Determination of the device engineering parameters[J]. IEEE Trans Plasma Sci, 2014, 42(3): 495-502. doi: 10.1109/TPS.2013.2296939
    [8]
    [9]
    屈鲁, 李格, 李华. 脉冲电网用500 kV三绕组降压变压器短路阻抗的优化[J]. 高电压技术, 2014, 40(10):3211-3227. (Qu Lu, Li Ge, Li Hua. Short-circuit impedance optimization for 500 kV three-winding step-down transformer in pulsed power electric network[J]. High Voltage Engineering, 2014, 40(10): 3211-3227
    [10]
    王峰, 徐政, 薛英林. 高压直流输电换流变压器参数确定方法[J]. 电力系统保护与控制, 2011, 39(22):98-102. (Wang Feng, Xu Zheng, Xue Yinglin. Calculation of converter transformer’s parameters for HVDC transmission[J]. Power System Protection and Control, 2011, 39(22): 98-102 doi: 10.7667/j.issn.1674-3415.2011.22.018
    [11]
    张友富, 黄振鹏, 向孟奇, 等. 向家坝-上海±800 kV换流变压器短路阻抗确定方法的研究[J]. 华东电力, 2011, 39(12):2002-2006. (Zhang Youfu, Huang Zhenpeng, Xiang Mengqi, et al. Parameter selection for converter transformer short circuit impedance in Xiangjiaba-Shanghai ±800 kV UHVDC Project[J]. East China Electric Power, 2011, 39(12): 2002-2006
    [12]
    郭贤珊, 付颖. ±1100 kV特高压直流工程换流变最优短路阻抗[J]. 电力系统保护与控制, 2018, 1(4):496-503. (Guo Xianshan, Fu Ying. Study on optimal short-circuit impedance of converter transformer for ±1100 k V UHVDC[J]. Power System Protection and Control, 2018, 1(4): 496-503
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