Small Time-step Real-time Simulation Method Considering Converter Loss Characteristics

被引:0
作者
Su H. [1 ]
Xu J. [1 ]
Wang K. [1 ]
Xu P. [1 ]
Wu P. [1 ]
机构
[1] Key Laboratory of Control of Power Transmission and Conversion, Ministry of Education, Shanghai Jiao Tong University, Minhang District, Shanghai
来源
Zhongguo Dianji Gongcheng Xuebao/Proceedings of the Chinese Society of Electrical Engineering | 2021年 / 41卷 / 05期
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
Converter loss; Electromagnetic transient; Real-time simulation; Small time-step model;
D O I
10.13334/j.0258-8013.pcsee.200409
中图分类号
学科分类号
摘要
Small time-step real-time simulation is the key to hardware-in-the-loop testing of power electronic converters. Considering the loss can make the real-time simulator response closer to reality, and effectively evaluate the efficiency. Small time-step model based on the equivalent of inductance/ capacitance has virtual loss problem, and cannot simulate the loss accurately. This paper proposed a model that reflects the loss characteristics, combined the equivalent of physical components and discrete system constructed, obtained the parameters through response matching, and gave the stability region. For the inconvenience in switching loss real-time simulation, an equivalent algorithm with high versatility was proposed by promoting the impulse theorem. The simulation and experimental results show that, compared with the LC-based model, the proposed model and algorithm suppresses distorted switching oscillation, eliminates off-state losses, greatly improves dynamic and steady characteristics, and has higher accuracy of loss simulation. © 2021 Chin. Soc. for Elec. Eng.
引用
收藏
页码:1840 / 1850
页数:10
相关论文
共 23 条
[1]  
ZHOU Xiaoxin, CHEN Shuyong, LU Zongxiang, Et al., Technology features of the new generation power system in China, Proceedings of the CSEE, 38, 7, pp. 1893-1904, (2018)
[2]  
WEN Yunfeng, YANG Weifeng, WANG Ronghua, Et al., Review and prospect of toward 100% renewable energy power systems, Proceedings of the CSEE, 40, 6, pp. 1843-1856, (2020)
[3]  
FARUQUE M D O, STRASSER T, LAUSS G, Et al., Real-time simulation technologies for power systems design, testing, and analysis, IEEE Power and Energy Technology Systems Journal, 2, 2, pp. 63-73, (2015)
[4]  
WANG Yu, LIU Chongru, LI Gengyin, FPGA-based real-time modeling of modular multilevel converters and hardware-in-the-loop simulation, Proceedings of the CSEE, 38, 13, pp. 3912-3920, (2018)
[5]  
KARIMI S, POURE P, SAADATE S., An HIL-based reconfigurable platform for design, implementation, and verification of electrical system digital controllers, IEEE Transactions on Industrial Electronics, 57, 4, pp. 1226-1236, (2010)
[6]  
HERRERA L, LI Cong, YAO Xiu, Et al., FPGA-based detailed real-time simulation of power converters and electric machines for EV HIL applications, IEEE Transactions on Industry Applications, 51, 2, pp. 1702-1712, (2015)
[7]  
SU Liping, CHEN Kan, LI Guojie, Et al., Real-time simulation study of photovoltaic grid-connected system by RTDS, Power System Protection and Control, 40, 15, pp. 110-115, (2012)
[8]  
DUFOUR C, MAHSEREDJIAN J, BELANGER J., A combined state-space nodal method for the simulation of power system transients, IEEE Transactions on Power Delivery, 26, 2, pp. 928-935, (2011)
[9]  
WANG Chengshan, GAO Fei, LI Peng, Et al., Adaptability analysis of typical power electronic device models, Automation of Electric Power Systems, 36, 6, pp. 63-68, (2012)
[10]  
HUI S Y R, MORRALL S., Generalised associated discrete circuit model for switching devices, IEE Proceedings-Science, Measurement and Technology, 141, 1, pp. 57-64, (1994)