Transient Angle Stability of Virtual Synchronous Generators Using Lyapunov's Direct Method

被引:359
作者
Shuai, Zhikang [1 ]
Shen, Chao [1 ]
Liu, Xuan [1 ]
Li, Zuyi [2 ]
Shen, Z. John [2 ]
机构
[1] Hunan Univ, Coll Elect & Informat Engn, Changsha 410082, Hunan, Peoples R China
[2] IIT, Dept Elect & Comp Engn, Chicago, IL 60616 USA
基金
中国国家自然科学基金;
关键词
Virtual synchronous generator; transient angle stability; Lyapunov's direct method; reactive power control loop; POWER-SYSTEMS; CLASSIFICATION; INVERTERS;
D O I
10.1109/TSG.2018.2866122
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
With an increasing number of distributed energy resources integrated into the power system, inverters need to take on the corresponding responsibility for the security and stability of the system. Virtual synchronous generators (VSGs) are proposed to mimic dynamic characteristics of traditional rotational synchronous generators (RSGs) to compensate for the loss of inertia and reserve capacity. Similar to RSGs, VSGs will experience transient angle instability under certain conditions, which likely threatens the system security. In this paper, transient angle stability of a VSG is investigated by Lyapunov's direct method. The deteriorative effect of reactive power control loop on transient angle stability is first analyzed and then voltage variation is incorporated into an approximate Lyapunov's direct method. In this method, the inverter internal voltage is treated as a parameter rather than a state variable. Moreover, the influence of different parameters on transient angle stability is studied. Finally, an enhanced control strategy is presented to improve the transient angle stability by adjusting the reference power. Numerical simulation results are presented to validate the effectiveness of the proposed method and the enhanced control.
引用
收藏
页码:4648 / 4661
页数:14
相关论文
共 34 条
[1]   Lyapunov function for power system's with transfer conductances: Extension of the invariance principle [J].
Bretas, NG ;
Alberto, LFC .
IEEE TRANSACTIONS ON POWER SYSTEMS, 2003, 18 (02) :769-777
[2]   Equivalence of Virtual Synchronous Machines and Frequency-Droops for Converter-Based MicroGrids [J].
D'Arco, Salvatore ;
Suul, Jon Are .
IEEE TRANSACTIONS ON SMART GRID, 2014, 5 (01) :394-395
[3]   Overcurrent and Overload Protection of Directly Voltage-Controlled Distributed Resources in a Microgrid [J].
Etemadi, Amir H. ;
Iravani, Reza .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2013, 60 (12) :5629-5638
[4]   A Battery/Ultracapacitor Hybrid Energy Storage System for Implementing the Power Management of Virtual Synchronous Generators [J].
Fang, Jingyang ;
Tang, Yi ;
Li, Hongchang ;
Li, Xiaoqiang .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2018, 33 (04) :2820-2824
[5]   Control of distributed uninterruptible power supply systems [J].
Guerrero, Josep M. ;
Hang, Lijun ;
Uceda, Javier .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2008, 55 (08) :2845-2859
[6]   Distributed Generation Toward a New Energy Paradigm [J].
Guerrero, Josep M. ;
Blaabjerg, Frede ;
Zhelev, Toshko ;
Hemmes, Kas ;
Monmasson, Eric ;
Jemei, Samir ;
Comech, Maria P. ;
Granadino, Ramon ;
Frau, Juan I. .
IEEE INDUSTRIAL ELECTRONICS MAGAZINE, 2010, 4 (01) :52-64
[7]   Flexible Power Regulation and Current-Limited Control of the Grid-Connected Inverter Under Unbalanced Grid Voltage Faults [J].
Guo, Xiaoqiang ;
Liu, Wenzhao ;
Lu, Zhigang .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2017, 64 (09) :7425-7432
[8]  
Hart P., 2014, North American Power Symposium (NAPS), P1, DOI [DOI 10.1109/PECI.2014.6804554.IEEE, 10.1109/NAPS.2014. 6965437, DOI 10.1109/NAPS.2014.6965437]
[9]   Analysis, Design, and Implementation of Virtual Impedance for Power Electronics Interfaced Distributed Generation [J].
He, Jinwei ;
Li, Yun Wei .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 2011, 47 (06) :2525-2538
[10]   Transient Stability Analysis and Control Design of Droop-Controlled Voltage Source Converters Considering Current Limitation [J].
Huang, Linbin ;
Xin, Huanhai ;
Wang, Zhen ;
Zhang, Leiqi ;
Wu, Kuayu ;
Hu, Jiabing .
IEEE TRANSACTIONS ON SMART GRID, 2019, 10 (01) :578-591