A Deadbeat Grid-connected Control Method Based on Robust PWM

被引:0
|
作者
Yang L. [1 ]
Chen Y. [1 ]
Luo A. [1 ]
Huai K. [2 ]
Zhou L. [1 ]
机构
[1] National Electric Power Conversion and Control Engineering Technology Research Center, Hunan University, Changsha
[2] Guangzhou Power Supply Bureau, Guangzhou
基金
中国国家自然科学基金;
关键词
Deadbeat grid-connected control; Dynamic; One-step-delay control; Robust PWM; Stability;
D O I
10.16339/j.cnki.hdxbzkb.2018.10.010
中图分类号
学科分类号
摘要
In the grid-connected inverter based on the deadbeat current control, the filter inductance variation and one-step-delay control delay affect the distortion of the grid current, stability and dynamic response speed of the system. In this paper, a deadbeat grid-connected control method based on robust PWM is proposed, which reduces the distortion of the grid current caused by the filter inductance variation, effectively solves the delay of the one-step-delay control, reduces the characteristic root equation order of the closed-loop transfer function of the system, and improves the stability and dynamic response speed of the system. The influence of the filter inductance deviation coefficient on the system performance is analyzed, and the filter inductance deviation coefficient of the system critical stability increases with the increase of the parasitic resistance of the filter inductance and the line equivalent resistance and decreases with the increase of the sampling frequency. Considering the stability and dynamic response speed of the system, the optimal selection range of the key control parameters is given. Simulation and experimental results verify the effectiveness of the proposed method. © 2018, Editorial Department of Journal of Hunan University. All right reserved.
引用
收藏
页码:72 / 79
页数:7
相关论文
共 21 条
  • [11] Pichan M., Rastegar H., Monfared M., Deadbeat control of the stand-alone four-leg inverter considering the effect of the neutral line inductor, IEEE Transactions on Industrial Electronics, 64, 4, pp. 2592-2601, (2017)
  • [12] Blaabjerg F., Teodorescu R., Liserre M., Et al., Overview of control and grid synchronization for distributed power systems, IEEE Transactions on Industrial Electronics, 53, 5, pp. 1398-1409, (2006)
  • [13] Moreno J.C., Huerta J.M.E., Gil R.G., Et al., A robust predictive current control for three-phase grid-connected inverters, IEEE Transactions on Industrial Electronics, 56, 6, pp. 1993-2004, (2009)
  • [14] Cheny D., Luo A., Zhou L.M., Et al., A robust predictive deadbeat grid-connected control method based on power feed-forward control, Proceedings of the CSEE, 33, 36, (2013)
  • [15] Wu Z.X., Zou Y.P., Zhang Z.Y., Et al., Adaptive predictive controller of supply current applied in single-phase PWM rectifier, Transactions of China Electrotechnical Society, 25, 2, pp. 73-79, (2010)
  • [16] Yang Y., Suo J., Qi C.Q., Et al., Inductance online identification control for three-phase grid-connected inverters, Electric Machines and Control, 15, 3, pp. 52-57, (2011)
  • [17] Sun X.D., Ren B.Y., Zhong Y.R., Et al., An online estimation method of the filter inductance for a predictive current control, Transactions of China Electrotechnical Society, 24, 7, pp. 150-156, (2009)
  • [18] Bibian S., Hua J., Time delay compensation of digital control for DC switch mode power supplies using prediction techniques, IEEE Transactions on Power Electronics, 15, 5, pp. 835-842, (2000)
  • [19] Sun P.J., Zhou L.W., Du X., Duty ratio prediction control method with time delay compensation, Transactions of China Electrotechnical Society, 25, 5, pp. 123-128, (2010)
  • [20] Espi J.M., Castello J., Garcia-Gil R., Et al., An adaptive robust predictive current control for three-phase grid-connected inverters, IEEE Transactions on Industrial Electronics, 58, 8, pp. 3537-3546, (2011)