Spectrum Relocation PWM Method for High-power Inverter to Output Specific Interharmonics

被引:0
|
作者
Xu, Lei [1 ]
Xie, Jie [1 ]
Zhang, Hui [1 ]
He, Yigang [1 ]
Zhou, Jintao [1 ]
Li, Qizhen [1 ]
机构
[1] School of Electrical Engineering and Automation, Wuhan University, Wuhan,430072, China
来源
基金
中国国家自然科学基金;
关键词
Electric inverters - Harmonic analysis;
D O I
暂无
中图分类号
O24 [计算数学];
学科分类号
070102 ;
摘要
A pulse width modulation (PWM) method of specific interharmonic control is proposed for high-power inverters, whose main idea is to use time-shift and phase-shift characteristics of the signal to generate spectrum relocation, and to selectively relocate the specific frequency to the desired interharmonic frequency. Firstly, the mathematical model of phase-shifted modulation is established, the principle of phase-shifted modulation with different modulation sub-periods and amount of spectrum relocation are analyzed, and the amplitude-frequency characteristics of modulation signal are derived. Then, the selective harmonic control based on asymmetric SHE-PWM is used to perform linear phase-shifted modulation on characteristic harmonics and eliminate other adjacent characteristic harmonics at the same time. The spectrum relocation PWM method can be adopted to move the fundamental or characteristic harmonics to adjacent interharmonics and suppress the parasitic interharmonics. Theoretically, the maximum spectrum relocation range is −50~50 Hz. Simulations and experiments show that the spectrum relocation PWM based on asymmetric SHE-PWM is better than the conventional SPWM to control three-phase inverter output specific interharmonics at the switching frequency lower than 1 kHz, and the spectrum relocation PWM based on SVPWM controlling the grid-connected inverter has good specific interharmonic compensation performance. © 2022 Science Press. All rights reserved.
引用
收藏
页码:3155 / 3165
相关论文
共 50 条
  • [31] High-power Inverter Modules in new Building Size
    不详
    ATP EDITION, 2016, (7-8): : 23 - 23
  • [32] Zero-Speed Operation of High-Power PWM Current-Source-Inverter-Fed Induction Motor Drive
    Liu, Fangrui
    Wu, Bin
    Pande, Manish
    Zargari, Navid Reza
    IEEE TRANSACTIONS ON POWER ELECTRONICS, 2012, 27 (06) : 3020 - 3027
  • [33] An Interleaved High-Power Flyback Inverter for Photovoltaic Applications
    Tamyurek, Bunyamin
    Kirimer, Bilgehan
    IEEE TRANSACTIONS ON POWER ELECTRONICS, 2015, 30 (06) : 3228 - 3241
  • [34] A Key Strategy for Controlling the High-power Photovoltaic Inverter
    Zhou, Jinghua
    Cui, Anwei
    Zhang, Xiaowei
    Applied Decisions in Area of Mechanical Engineering and Industrial Manufacturing, 2014, 577 : 463 - 468
  • [35] Improved output performance of high-power VCSELs
    Miller, M
    Grabherr, M
    King, R
    Jäger, R
    Michalzik, R
    Ebeling, KJ
    IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, 2001, 7 (02) : 210 - 216
  • [36] Combined Output Windows for High-Power Lasers
    Rogozhin, M. V.
    Rogalin, V. E.
    Krymsky, M. I.
    Kaplunov, I. A.
    MECHANICS, RESOURCE AND DIAGNOSTICS OF MATERIALS AND STRUCTURES (MRDMS-2018), 2018, 2053
  • [37] High-power multitransistor-inverter uninterruptible power supply system
    Holtz, Joachim
    Lotzkat, Wolfgang
    Werner, Karl-Heinz
    IEEE Transactions on Power Electronics, 1988, 3 (03) : 278 - 285
  • [38] A Design of High-Power Inverter Circuit Including GaN Power Devices
    Sawada, Takashi
    Tadano, Hiroshi
    Shiozaki, Koji
    2020 22ND EUROPEAN CONFERENCE ON POWER ELECTRONICS AND APPLICATIONS (EPE'20 ECCE EUROPE), 2020,
  • [39] THE TRAJECTORY TRACKING APPROACH - A NEW METHOD FOR MINIMUM DISTORTION PWM IN DYNAMIC HIGH-POWER DRIVES
    HOLTZ, J
    BEYER, B
    IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 1994, 30 (04) : 1048 - 1057
  • [40] Research on SIT high-frequency and high-power resonant inverter
    Li, Jinfu
    Zhang, Yikua
    Zhang, Li
    Tien Tzu Hsueh Pao/Acta Electronica Sinica, 1996, 24 (05): : 92 - 95