Integrated Filtering Method of 12-pulse Rectifier Based on Harmonic Magnetic Potential Balance

被引:0
|
作者
Wang T. [1 ,2 ]
Peng G. [1 ]
Hu J. [1 ]
Yang T. [1 ]
Long X. [1 ]
Xu J. [2 ]
机构
[1] Power China Zhongnan Engineering Co., Ltd., Changsha
[2] College of Electrical and Information Engineering, Hunan University, Changsha
基金
中国国家自然科学基金;
关键词
12-pulse rectifier; Active filtering method; Harmonic magnetic potential balance; Integrated filter; Proportional-integral (PI) controller; Proportional-resonant (PR) controller; Transformer tap;
D O I
10.7500/AEPS20190808006
中图分类号
学科分类号
摘要
An integrated filtering method for 12-pulse rectifier based on harmonic magnetic potential balance is proposed. The topology, mathematical model and filtering principle of the integrated filter are explained in detail. In this method, a back-to-back converter is connected to the tap of star and delta windings on the secondary side of 12-pulse rectifier transformer. The specific harmonic current components are injected into each winding tap through the back-to-back converter. By using the magnetic potential balance between these harmonic components generated by back-to-back converter and the harmonic components generated by the load side of 12-pulse rectifier, the specific harmonic current components on the grid side of 12-pulse rectifier can be eliminated well. The proportional-integral (PI) + proportional-resonant (PR) controller is adopted to realize error-free tracking of the specific harmonic components. The proposed method can improve the voltage and current adaptability of the filter converter, so the cost of voltage matching transformer can be saved effectively and the capacity potential of filter converter can be used fully. Finally, the correctness of the proposed filtering method is verified by simulation and experiment. © 2020 Automation of Electric Power Systems Press.
引用
收藏
页码:157 / 167
页数:10
相关论文
共 21 条
  • [1] Rahmani S., Hamadi A., Al-Haddad K., A Lyapunov-function-based control for a three-phase shunt hybrid active filter, IEEE Transactions on Industrial Electronics, 59, 3, pp. 1418-1429, (2012)
  • [2] Xu J., Wang T., Cui G., Research on a kind of inner loop and outer loop decoupling control for three-phase voltage-source PWM rectifier, Power Electronics, 52, 11, pp. 88-91, (2018)
  • [3] Xu J., Wang T., Cui G., Et al., Research on a new active power filter mode based on harmonic magnetic potential balance of transformer, Electric Power Automation Equipment, 39, 2, pp. 107-114, (2019)
  • [4] Zou X., Du X., Frequency coupling mechanism analysis and stability judgement for three-phase grid-connected inverter, Automation of Electric Power Systems, 42, 18, pp. 57-63, (2018)
  • [5] Wei W., Xu S., Sun J., Optimal design of passive filter, Electric Power Automation Equipment, 32, 1, pp. 62-66, (2012)
  • [6] Liu N., Zhang C., Duan X., Et al., Comparison and applicability analysis of small-signal modeling methods for grid-connected inverter, Automation of Electric Power Systems, 42, 23, pp. 134-141, (2018)
  • [7] Wang C., Luo L., Chen Y., Et al., Improved HVDC system based on inductive filtering and its harmonic transfer characteristics, Electric Power Automation Equipment, 35, 10, pp. 127-132, (2015)
  • [8] Liu W., Luo L., Li Y., Et al., Potential harmonic amplification and its prevention of industrial rectifier system based on inductive filtering method, Transactions of China Electrotechnical Society, 29, 2, pp. 304-317, (2014)
  • [9] Komurcugi H., Altin N., Ozdemir S., Et al., Lyapunov-function and proportional-resonant-based control strategy for single-phase grid-connected VSI with LCL filter, IEEE Transactions on Power Electronics, 63, 5, pp. 2838-2849, (2016)
  • [10] Tan C., Chen Q., Zhang L., Et al., Deadbeat and repetitive control for grid-connected three-phase four-leg inverters, Automation of Electric Power Systems, 42, 18, pp. 142-148, (2018)