Characteristics Analysis and Suppression of Power Oscillation of Virtual Synchronous Generator Using Three-order Model

被引:0
|
作者
Chen Q. [1 ]
Zhou W. [1 ]
He C. [1 ]
Wang C. [1 ]
机构
[1] College of Energy and Electrical Energy, Hohai University, Nanjing
来源
基金
中国国家自然科学基金;
关键词
additional damping torque compensator; power electronics dominated; power oscillation; small signal stability; virtual synchronous generator;
D O I
10.13336/j.1003-6520.hve.20212029
中图分类号
学科分类号
摘要
Virtual synchronous generator (VSG) provides a new solution to deal with insufficient inertia in a power-electronic-dominated power system. However, the VSG is derived from the mathematical model of synchronous generator, thus the problem of power oscillation of traditional SG also exists. Consequently, a three-order model of the synchronous generator is used to construct VSG. Based on the small-signal model of the VSG under the connection to infinite bus system, analysis by a complex torque coefficient method shows that, in certain conditions, the system may produce negative damping torque under the influences of line impedance and other factors. Meanwhile, the line resistance will introduce nonlinear effects into the negative damping torque, which has the risk of power oscillation. The additional damping torque compensator (ADTC) is designed to improve the damping characteristics of the system, in which a positive damping torque is introduced to suppress the power oscillation. Finally, the simulation is built to verify the influencing factors of negative damping torque and the feasibility and effectiveness of ADTC. © 2023 Science Press. All rights reserved.
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页码:682 / 691
页数:9
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共 33 条
  • [1] XIA Yanghong, WEI Wei, New analysis framework for transient stability evaluation of power electronics dominated power system: coupling factors based nonlinear decoupling method, Proceedings of the CSEE, 40, 16, pp. 5102-5112, (2020)
  • [2] LI Yuye, LIU Kaipei, ZHU Shu, Et al., DC side impedance modeling and stability analysis of VSC-MTDC system, High Voltage Engineering, 47, 2, pp. 627-636, (2021)
  • [3] JIANG Qirong, WANG Liang, XIE Xiaorong, Study on oscillations of power-electronized power system and their mitigation schemes, High Voltage Engineering, 43, 4, pp. 1057-1066, (2017)
  • [4] SUN Weiqing, LIU Wei, PEI Liang, Et al., Multistage energy storage-transmission network joint planning considering the system value of energy storage under the background of high penetration renewable energy, High Voltage Engineering, 47, 3, pp. 983-992, (2021)
  • [5] YUAN Wenkai, ZHENG Tianwen, CHEN Laijun, Et al., Small-signal stability analysis method of grid-forming distributed generation system based on the dissipation theory, High Voltage Engineering, 47, 10, pp. 3497-3504, (2021)
  • [6] LI Xiaozhu, WANG Weiqing, WANG Haiyun, Et al., Bi-level and multi-objective robust optimal dispatching of AC/DC hybrid microgrid with virtual power plant participation, High Voltage Engineering, 46, 7, pp. 2350-2358, (2020)
  • [7] ZHONG Q C, WEISS G., Synchronverters: inverters that mimic synchronous generators, IEEE Transactions on Industrial Electronics, 58, 4, pp. 1259-1267, (2011)
  • [8] ZHONG Q C., Robust droop controller for accurate proportional load sharing among inverters operated in parallel, IEEE Transactions on Industrial Electronics, 60, 4, pp. 1281-1290, (2013)
  • [9] HONG Haohao, GU Wei, HUANG Qiang, Et al., Power oscillation damping control for microgrid with multiple VSG units, Proceedings of the CSEE, 39, 21, pp. 6247-6254, (2019)
  • [10] WEI Yalong, ZHANG Hui, SUN Kai, Et al., Pre-synchronization method of virtual synchronous generator using virtual power, Automation of Electric Power Systems, 40, 12, pp. 124-129, (2016)