Comparative Analysis of the Fault Ride-Through Capabilities of the VSG Methods of Microgrid Inverter Control under Faults

被引:0
作者
Buraimoh, Elutunji [1 ]
Davidson, Innocent E. [1 ]
机构
[1] Durban Univ Technol, Dept Elect Power Engn, Durban, South Africa
来源
2019 SOUTHERN AFRICAN UNIVERSITIES POWER ENGINEERING CONFERENCE/ROBOTICS AND MECHATRONICS/PATTERN RECOGNITION ASSOCIATION OF SOUTH AFRICA (SAUPEC/ROBMECH/PRASA) | 2019年
关键词
microgrid; inverter; fault-ride-through; distributed generation; virtual synchronous generator; IMPLEMENTATION; SYSTEM;
D O I
10.1109/robomech.2019.8704754
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
The Distributed Generators (DGs) based on Renewable Energy System (RES) lack the inertia (rotating mass) and damping features of conventional power system, where fossil fuel based synchronous generators are dominant. The consequence of insignificant inertia and damping on grid stability and dynamic performance is further compounded with growing intermittent RES introduction into the grid. The use of RES based converters with appropriate Virtual Synchronous Generator (VSG) control strategy offers the necessary inertia support which culminates exceptional grid stability enhancement. However, the existing VSG studies focused on inverters in steady-state and under balanced grid voltage without emphasis on VSG dynamic performance during fault and other transients. Conversely, under fault conditions, it's imperative to investigate the dynamic performance of the VSG control strategies while ensuring the protection of inverters owing to their low overvoltage and overcurrent tolerance capacities. Consequently, this study investigated the two methods of Virtual Synchronous Machine (VISMA) and carried out a comparative analysis to observe how the two methods ensure the VSG-inverter's sustained grid connection under grid fault. Fault-Ride-Through (FRT) is the ability of electrical generating units to remain grid connected in the brief periods of fault and after fault clearance. Conclusions are drawn as to which VISMA strategies provide a better performance in terms of fault ride-through capability, current-limiting and recovery from faults.
引用
收藏
页码:400 / 405
页数:6
相关论文
共 19 条
[1]   Fuzzy-Secondary-Controller-Based Virtual Synchronous Generator Control Scheme for Interfacing Inverters of Renewable Distributed Generation in Microgrids [J].
Andalib-Bin-Karim, Chowdhury ;
Liang, Xiaodong ;
Zhang, Huaguang .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 2018, 54 (02) :1047-1061
[2]   Virtual synchronous generators: A survey and new perspectives [J].
Bevrani, Hassan ;
Ise, Toshifumi ;
Miura, Yushi .
INTERNATIONAL JOURNAL OF ELECTRICAL POWER & ENERGY SYSTEMS, 2014, 54 :244-254
[3]   A Virtual Synchronous Machine implementation for distributed control of power converters in Smart Grids [J].
D'Arco, Salvatore ;
Suul, Jon Are ;
Fosso, Olav B. .
ELECTRIC POWER SYSTEMS RESEARCH, 2015, 122 :180-197
[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]  
Glover J.D., 2017, Power System Analysis & Design, SI Version, V6th ed.
[6]  
Guerrero P. C., 2013, IEEE T IND ELECTRON, V60, p[1254, 1262]
[7]   A novel control approach for virtual synchronous generators to suppress frequency and voltage fluctuations in microgrids [J].
Hirase, Yuko ;
Abe, Kensho ;
Sugimoto, Kazushige ;
Sakimoto, Kenichi ;
Bevrani, Hassan ;
Ise, Toshifumi .
APPLIED ENERGY, 2018, 210 :699-710
[8]   Analysis of Resonance in Microgrids and Effects of System Frequency Stabilization Using a Virtual Synchronous Generator [J].
Hirase, Yuko ;
Sugimoto, Kazushige ;
Sakimoto, Kenichi ;
Ise, Toshifumi .
IEEE JOURNAL OF EMERGING AND SELECTED TOPICS IN POWER ELECTRONICS, 2016, 4 (04) :1287-1298
[9]  
Liu J., 2016, NIAG 2016 S MICR CAN
[10]   Virtual Synchronous Generator Control of Full Converter Wind Turbines With Short-Term Energy Storage [J].
Ma, Yiwei ;
Cao, Wenchao ;
Yang, Liu ;
Wang, Fei ;
Tolbert, Leon M. .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2017, 64 (11) :8821-8831