Frequency Regulation Strategy with Participation of Variable-speed Wind Turbines for Power System with High Wind Power Penetration

被引:0
|
作者
Wang R. [1 ]
Gao L. [1 ]
Shen J. [1 ]
Wang Q. [1 ]
Deng Y. [2 ]
Li H. [3 ]
机构
[1] School of Automation & Electrical Engineering, Lanzhou Jiaotong University, Lanzhou
[2] State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources, North China Electric Power University, Beijing
[3] Shandong Nuclear Power Limited Company, Yantai
关键词
High wind power penetration; Inertial response; Multi-time scale coordinated optimization; Primary frequency regulation; Variable-speed wind turbine (VSWT);
D O I
10.7500/AEPS20190109006
中图分类号
学科分类号
摘要
Aiming at the demand of power system for power quality, economy, load support and rapid response when large-scale wind power is connected to the grid, a multi-time scale coordinated optimization strategy with participation of variable-speed wind turbines in frequency regulation for the power system with high wind power penetration is proposed. The strategy considers the flexibility of load fluctuation and active output of wind power. According to operation characteristics of the variable-speed wind turbines, the flexible load reduction control of wind turbines under different wind speed conditions is established. Meanwhile, the frequency regulation output of wind turbines is coordinated at different time scales, which makes the inertia combined with primary frequency regulation to achieve frequency adjustment optimization. The results show that variable-speed wind turbines could effectively provide inertial support for the system and has flexible and controllable static frequency response characteristics. © 2019 Automation of Electric Power Systems Press.
引用
收藏
页码:101 / 108
页数:7
相关论文
共 26 条
  • [1] Wu Z., Gao W., Gao T., Et al., State-of-the-art review on frequency response of wind power plants in power systems, Journal of Modern Power Systems and Clean Energy, 6, 1, pp. 1-16, (2018)
  • [2] Obaid Z.A., Cipcigan L.M., Abrahim L., Et al., Frequency control of future power systems: reviewing and evaluating challenges and new control methods, Journal of Modern Power Systems and Clean Energy, 7, 1, pp. 9-25, (2018)
  • [3] Wang Y., Delille G., Bayem H., Et al., High wind power penetration in isolated power systems-assessment of wind inertial and primary frequency responses, IEEE Transactions on Power Systems, 28, 3, pp. 2412-2420, (2013)
  • [4] Wu Z., Gao D.W., Zhang H., Et al., Coordinated control strategy of battery energy storage system and PMSG-WTG to enhance system frequency regulation capability, IEEE Transactions on Sustainable Energy, 8, 3, pp. 1330-1343, (2017)
  • [5] Liu Y., Lin J., Wu Q.H., Et al., Frequency control of DFIG based wind power penetrated power systems using switching angle controller and AGC, IEEE Transactions on Power Systems, 32, 2, pp. 1553-1567, (2017)
  • [6] Xue Y., Tai N., Review of contribution to frequency control through variable speed wind turbine, Renewable Energy, 36, 6, pp. 1671-1677, (2011)
  • [7] Wang Z., Wu W., Coordinated control method for DFIG-based wind farm to provide primary frequency regulation service, IEEE Transactions on Power Systems, 33, 3, pp. 2644-2659, (2018)
  • [8] Ruttledge L., Miller N.W., O'Sullivan J., Et al., Frequency response of power systems with variable speed wind turbines, IEEE Transactions on Sustainable Energy, 3, 4, pp. 683-691, (2012)
  • [9] Ye H., Control of the Wind Turbines, (2009)
  • [10] Tian X., Wang W., Chi Y., Et al., Variable parameter virtual inertia control based on effective energy storage of DFIG-based wind turbines, Automation of Electric Power Systems, 39, 5, pp. 20-26, (2015)