Multi Scenarios Simulation Modeling and Applications of Battery Energy Storage Station for Bulk Power System Dynamic Simulation

被引:0
|
作者
Dai H. [1 ]
Xiao X. [1 ]
Song X. [1 ]
Mu S. [1 ]
Yu H. [2 ]
Wang Q. [1 ]
Su Z. [1 ]
Wu G. [1 ]
机构
[1] State Key Laboratory of Power Grid Safety and Energy Conservation, China Electric Power Research Institute, Haidian District, Beijing
[2] Economic and Technological Research Institute, State Grid Hunan Electric Power Co., Ltd., Hunan Province, Changsha
来源
关键词
AGC secondary frequency regulation; BESS; fault voltage ride-through; frequency regulation; measured comparison; power control; simulation modeling;
D O I
10.13335/j.1000-3673.pst.2022.1034
中图分类号
学科分类号
摘要
The increasing capacity of BESS in the new power systems provides a basis for energy storage power stations to participate in the diversified regulation and control functions of the power grid. The electromechanical transient and long-term dynamic simulation modeling and programming of BESS are carried out to upgrade the incomplete model of BESS in large-scaled power systems, covering the typical application scenarios such as the normal operation, fault ride-through, frequency supporting and the participation in the AGC secondary frequency regulation conditions. The article proposes the power control strategy model under the fault ride-through conditions as well as the secondary frequency regulation model in the AGC. The validation and functionality of the simulation model are verified based on the actual recording curves and a provincial power grid case. The simulation results show that the model constructed in this paper can be applied to multi-scenario dynamic simulation of the large power grids with high accuracy. © 2023 Power System Technology Press. All rights reserved.
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页码:1828 / 1836
页数:8
相关论文
共 23 条
  • [1] LI Jianlin, LI Yaxin, ZHOU Xichao, Summary of research on grid-side energy storage technology[J], Electric Power Construction, 41, 6, pp. 77-84, (2020)
  • [2] Qian XU, SUN Yikai, LIU Liangdong, Review of function and typical application scenario analysis for energy storage station[J], Zhejiang Electric Power, 38, 5, pp. 3-10, (2019)
  • [3] LI Xiangjun, WANG Shangxing, HUI Dong, Summary and prospect of operation control and application method for battery energy storage systems[J], Power System Technology, 41, 10, pp. 3315-3325, (2017)
  • [4] XIE Lirong, ZHENG Hao, WEI Chengwei, Coordinated control strategy of photovoltaic hybrid energy storage considering prediction error compensation and fluctuation suppression[J], Automation of Electric Power Systems, 45, 3, pp. 130-138, (2021)
  • [5] ZHAO Jian, WANG Yifan, XIE Hua, An overview of energy storage applications in power systems with high penetration renewable energy resources[J], Electric Power, 52, 4, pp. 167-177, (2019)
  • [6] LI Xinran, HUANG Jiyuan, CHEN Yuanyang, Review on large-scale involvement of energy storage in power grid fast frequency regulation[J], Power System Protection and Control, 44, 7, pp. 145-153, (2016)
  • [7] JIANG Quanyuan, GONG Yuzhong, Review of wind power integration control with energy storage technology[J], Power System Technology, 39, 12, pp. 3360-3368, (2015)
  • [8] Xiaokang XU, BISHOP M, OIKARINEN D G, Application and modeling of battery energy storage in power systems[J], CSEE Journal of Power and Energy Systems, 2, 3, pp. 82-90, (2016)
  • [9] WECC wind plant dynamic modeling guidelines[R], (2014)
  • [10] POURBEIK P., WECC Type 4 wind turbine generator model – phase II[R], (2013)