Research on improving power quality of wind power system based on energy management system of flywheel energy storage system

被引:0
|
作者
Zhou H. [1 ]
Li J. [2 ]
Ge C. [2 ]
Bi J. [3 ]
Hu D. [2 ]
Li W. [1 ]
机构
[1] School of Electrical Engineering, Beijing Jiaotong University, Beijing
[2] Key Laboratory of Modern Power System Simulation and Control & Renewable Energy Technology, Ministry of Education, Northeast Electric Power University, Jilin
[3] State Grid Jiashan Power Supply Company, Jiashan
来源
关键词
Energy conversion; Energy management; Flywheel energy storage; Power quality; Wind power;
D O I
10.19912/j.0254-0096.tynxb.2018-1163
中图分类号
学科分类号
摘要
This paper designs a double-layer energy management system (EMS) of FESS, which is applied to improve grid power quality, upper level-decision management of EMS uses the fuzzy algorithm to solve the charging and discharging reference power of the FESS through considering the state of FESS and the demand of stabilizing wind power fluctuations, and lower level-dispatching control layers realize the energy conversion between FESS and grid through back-to-back double PWM converters based on dual-loop control. This paper analyzes the operating state of FESS and compares the voltage fluctuations at the PCC before and after the wind farm uses FESS to regulate the active power in the MATLAB/Simulink simulation environment. The simulation results verify the validity of the model. The model can improve the utilization efficiency of FESS and improve the power quality. © 2021, Solar Energy Periodical Office Co., Ltd. All right reserved.
引用
收藏
页码:105 / 113
页数:8
相关论文
共 27 条
  • [11] CIMUCA G O, SAUDEMONT C, ROBYNS B, Et al., Control and performance evaluation of a flywheel energy-storage system associated to a variable-speed wind generator, IEEE transactions on industrial electronics, 53, 4, pp. 1074-1085, (2006)
  • [12] DAOUD M I, MASSOUD A M, ABDEL-KHALIK A S, Et al., A flywheel energy storage system for fault ride through support of grid-connected VSC HVDC-based offshore wind farms, IEEE transactions on power systems, 31, 3, pp. 1671-1680, (2016)
  • [13] LIU Y M, XU Z M, WANG X D., Power smoothing control for wind farms using flywheel based energy storage, Energy storage science and technology, 4, 2, pp. 194-197, (2015)
  • [14] SUVIRE G O, MERCADO P E., Combined control of a distribution static synchronous compensator/ flywheel energy storage system for wind energy applications, IET generation transmission distribution, 6, 6, pp. 483-492, (2012)
  • [15] LIU S L, WEN J Y, GAO W G, Et al., FESS-based comprehensive control of grid-connecting wind power, Electric power automation equipment, 35, 12, pp. 34-39, (2015)
  • [16] LIU J, YAO W, WEN J Y, Et al., A wind farm virtual inertia compensation strategy based on energy storage system, Proceedings of CSEE, 35, 7, pp. 1596-1605, (2015)
  • [17] SHI L J, XU Q S, MA X D, Et al., Design of a flywheel energy storage system stabilizer considering multiple operating modes in a multi-machine system, Acta energiae solaris sinica, 33, 3, pp. 446-451, (2012)
  • [18] DENG W, TANG X S, PEI W, Et al., Voltage stability and control technologies of micro-grid with wind power, Transactions of China Electrotechnical Society, 27, 1, pp. 56-62, (2012)
  • [19] ZHANG X, YANG J Q, WANG M., An improved discharge control strategy with load current and rotor speed compensation for flywheel energy storage system, Transactions of China Electrotechnical Society, 30, 14, pp. 6-17, (2015)
  • [20] QIU W X, LI D X, XIA G F, Et al., A low cost permanent magnet biased bearing used in flywheel energy storage system, Transactions of China Electrotechnical Society, 30, pp. 58-62, (2015)