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Jia FU (符佳), Bo LYU (吕波), Haiqing LIU (刘海庆), Yingying LI (李颖颖), Dongmei LIU (刘冬梅), Yongqing WEI (魏永清), Chao FAN (范超), Yuejiang SHI (石跃江), Zhenwei WU (吴振伟), Baonian WAN (万宝年). Development of signal analysis method for the motional Stark effect diagnostic on EAST[J]. Plasma Science and Technology, 2017, 19(10): 104001. DOI: 10.1088/2058-6272/aa7941
Citation: Jia FU (符佳), Bo LYU (吕波), Haiqing LIU (刘海庆), Yingying LI (李颖颖), Dongmei LIU (刘冬梅), Yongqing WEI (魏永清), Chao FAN (范超), Yuejiang SHI (石跃江), Zhenwei WU (吴振伟), Baonian WAN (万宝年). Development of signal analysis method for the motional Stark effect diagnostic on EAST[J]. Plasma Science and Technology, 2017, 19(10): 104001. DOI: 10.1088/2058-6272/aa7941

Development of signal analysis method for the motional Stark effect diagnostic on EAST

Funds: This work was supported by the National Magnetic Confinement Fusion Science Program of China under Contract Nos. 2013GB112004 and 2015GB103003 and National Natural Science Foundation of China under Grant Nos. 11605242, 11535013 and 11405212.
More Information
  • Received Date: December 30, 2016
  • A pilot single-channel Motional Stark Effect (MSE) diagnostic has been developed on EAST since 2015. The dual photo-elastic modulators (PEM) were employed to encode the polarization angle into a time-varying signal. The pitch angle was related to the ratio of modulation amplitude at the second harmonic frequency. A digital harmonic analyzer (DHA) technique was developed for extracting the second harmonic amplitude. The results were validated with a hardware phase lock-in amplfier, and is also consistent with the software dual phase-locking algorithm.
  • [1]
    Qian J P et al 2016 Plasma Sci. Technol. 18 457
    [2]
    Qian J P et al 2015 Plasma Sci. Technol. 17 75
    [3]
    Liu H Q et al 2016 Rev. Sci. Instrum. 87 11D903
    [4]
    Levinton F M et al 1989 Phys. Rev. Lett. 63 2060
    [5]
    Levinton F M et al 1990 Rev. Sci. Instrum. 61 2914
    [6]
    Wroblewski D et al 1992 Rev. Sci. Instrum. 63 5140
    [7]
    Hu C D et al 2015 Plasma Sci. Technol. 17 817
    [8]
    Alves D et al 2004 Fusion Eng. Des. 71 175
    [9]
    Shi Y J et al 2006 Rev. Sci. Instrum. 77 036111
    [10]
    Jiang Y et al 1997 Rev. Sci. Instrum. 68 902
    [11]
    Ding B G et al 2015 Plasma Sci. Technol. 17 1092
    [12]
    Choi D W et al 1986 Rev. Sci. Instrum. 57 1989
    [13]
    Matlab Help v2014
    [14]
    Fu J et al 2014 Rev. Sci. Instrum. 85 11D410
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