• High Power Laser and Particle Beams
  • Vol. 34, Issue 4, 043005 (2022)
Qili Huang1, Linlin Hu1, Guowu Ma1, Dimin Sun1、*, Shenggang Gong1, Tingting Zhuo1, Xiao Jin1, and Cuicui Zhang2
Author Affiliations
  • 1Institute of Applied Electronics, CAEP, Mianyang 621900, China
  • 2Metrology Testing Center, CAEP, Mianyang 621900, China
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    DOI: 10.11884/HPLPB202234.210501 Cite this Article
    Qili Huang, Linlin Hu, Guowu Ma, Dimin Sun, Shenggang Gong, Tingting Zhuo, Xiao Jin, Cuicui Zhang. Design of high power millimeter wave power measurement and calibration system based on calorimetry[J]. High Power Laser and Particle Beams, 2022, 34(4): 043005 Copy Citation Text show less
    References

    [1] Nusinovich G S, Thumm M K A, Petelin M I. The gyrotron at 50: historical overview[J]. Journal of Infrared, Millimeter, and Terahertz Waves, 35, 325-381(2014).

    [2] Sykes A, Gryaznevich M P, Kingham D, et al. Recent advances on the spherical tokamak route to fusion power[J]. IEEE Transactions on Plasma Science, 42, 482-488(2014).

    [4] Xu Weiye, Xu Handong, Liu Fukun, et al. Calorimetric power measurements in the EAST ECRH system[J]. Plasma Science and Technology, 19, 105602(2017).

    [5] Bin W, Bruschi A, Takahashi K, et al. Validation experiments on the 2-MW CW 170-GHz load for the European ITER gyrotron[J]. IEEE Transactions on Plasma Science, 45, 501-511(2017).

    [6] Bin W, Bruschi A, Cirant S, et al. Absorbing coatings for high power millimeter-wave devices and matched loads[J]. Fusion Engineering and Design, 88, 2510-2514(2013).

    [7] Floristán M, Müller P, Gebhardt A, et al. Development and testing of 140 GHz absorber coatings for the water baffle of W7-X cryopumps[J]. Fusion Engineering and Design, 86, 1847-1850(2011).

    [8] Ives R L, Mizuhara M, Collins G, et al. Design operation of a 2 MW CW, RF load f gyrotrons[C]Proceedings of the 14th International Vacuum Electronics Conference (IVEC). 2013: 12.

    [9] Ioki K, Hiranai S, Moriyama S, et al. Development of a dummy load and waveguide components for 1 MW CW gyrotron[J]. Fusion Engineering and Design, 109/111, 951-955(2016).

    [10] Schmid M, Erckmann V, Gantenbein G, et al. Technical developments at the KIT gyrotron test facility[J]. Fusion Engineering and Design, 86, 518-521(2011).

    [12] Wu Dajun. Research of key technologies of high power millimeter wave transmission on EAST ECRH[D]. Hefei: University of Science Technology of China, 2019

    [13] Lou Zhefei, Luo Jirun, Li Wenqi, et al. Water loaded mirr design f 140GHz, 1MW Gyrotron[C]Proceedings of the 21st Annual Academic Conference of Vacuum Electronics Branch of Chinese Institute of Electronics. 2018

    CLP Journals

    [1] Linlin Hu, Dimin Sun, Qili Huang, Tingting Zhuo, Shenggang Gong, Peng Hu, Yi Jiang, Guowu Ma, Hongbin Chen, Hongge Ma. Design and experimental progress of a 105/140 GHz dual-frequency MW-level gyrotron[J]. High Power Laser and Particle Beams, 2023, 35(8): 083004

    [2] Linlin Hu, Dimin Sun, Qili Huang, Tingting Zhuo, Shenggang Gong, Peng Hu, Yi Jiang, Guowu Ma, Hongbin Chen, Hongge Ma. 1.0 MW pulse power achieved in 105/140 GHz dual-frequency MW-level gyrotron[J]. High Power Laser and Particle Beams, 2023, 35(2): 023001

    Qili Huang, Linlin Hu, Guowu Ma, Dimin Sun, Shenggang Gong, Tingting Zhuo, Xiao Jin, Cuicui Zhang. Design of high power millimeter wave power measurement and calibration system based on calorimetry[J]. High Power Laser and Particle Beams, 2022, 34(4): 043005
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