A Novel DC Power Distribution System Stabilization Method Based on Adaptive Resonance-Enhanced Voltage Controller

被引:36
作者
Abdollahi, Hessamaldin [1 ]
Arrua, Silvia [1 ]
Roinila, Tomi [2 ]
Santi, Enrico [1 ]
机构
[1] Univ South Carolina, Dept Elect Engn, Columbia, SC 29208 USA
[2] Tampere Univ Technol, Lab Automat & Hydraul, Tampere 33720, Finland
关键词
Adaptive stabilization; constant power load (CPL); dc power distribution systems; impedance measurement; resonance-based controller; IMPEDANCE; STABILITY; FUTURE; INPUT;
D O I
10.1109/TIE.2018.2881946
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
DC power distribution systems typically consist of several source converters supplying load converters through single or multiple dc buses. Such complex systems are prone to stability issues caused by the interactions among feedback-controlled converters. Additionally, dc interconnected systems typically undergo considerable changes in their operating points. This can cause a system that is well-stabilized at a certain operating point to go unstable for another operating condition. Therefore, a stabilization method that is capable of adapting to variations in system operating conditions is highly desirable. This paper presents an adaptive stabilization method implemented on the source-side. The system stability is periodically analyzed by real-time measurement of the system bus impedance, which is dominated by the source impedance. Accordingly, the source converter control is modified by the proposed method to guarantee stability and high performance of the entire system after system changes. The approach has several advantages, including ease of design and implementation, minimal deviation from the nominal controller, and robustness due to the real-time adaptive implementation. Simulation and experimental results are presented that confirm the effectiveness of the proposed method.
引用
收藏
页码:5653 / 5662
页数:10
相关论文
共 27 条
[1]  
Aldhaheri A, 2017, APPL POWER ELECT CO, P1578, DOI 10.1109/APEC.2017.7930909
[2]   The future of electronic power processing and conversion [J].
Blaabjerg, F ;
Consoli, A ;
Ferreira, JA ;
van Wyk, JD .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2005, 20 (03) :715-720
[3]   Constant-Power Load System Stabilization by Passive Damping [J].
Cespedes, Mauricio ;
Xing, Lei ;
Sun, Jian .
IEEE TRANSACTIONS ON POWER ELECTRONICS, 2011, 26 (07) :1832-1836
[4]  
Doerry N., 2007, NEXT GENERATION INTE, P120
[5]   Constant power loads and negative impedance instability in automotive systems: Definition, modeling, stability, and control of power electronic converters and motor drives [J].
Emadi, Ali ;
Khaligh, Alireza ;
Rivetta, Claudio H. ;
Williamson, Geoffrey A. .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2006, 55 (04) :1112-1125
[6]  
Erickson R.W., 2002, FUNDAMENTALS POWER E, V49
[7]   Individual load impedance specification for a stable DC distributed power system [J].
Feng, XG ;
Ye, ZH ;
Xing, K ;
Lee, FC ;
Borojevic, D .
APEC'99: FOURTEENTH ANNUAL APPLIED POWER ELECTRONICS CONFERENCE AND EXPOSITION, CONFERENCE PROCEEDINGS, VOLS 1 & 2, 1999, :923-929
[8]  
Ghanbari N., 2018, 2018 9th IEEE International Symposium on Power Electronics for Distributed Generation Systems (PEDG), P1
[9]   Stability Analysis and Damping Enhancement Based on Frequency-Dependent Virtual Impedance for DC Microgrids [J].
Guo, Li ;
Zhang, Shaohui ;
Li, Xialin ;
Li, Yun Wei ;
Wang, Chengshan ;
Feng, Yibin .
IEEE JOURNAL OF EMERGING AND SELECTED TOPICS IN POWER ELECTRONICS, 2017, 5 (01) :338-350
[10]   Hierarchical Control Design for a Shipboard Power System With DC Distribution and Energy Storage Aboard Future More-Electric Ships [J].
Jin, Zheming ;
Meng, Lexuan ;
Guerrero, Josep M. ;
Han, Renke .
IEEE TRANSACTIONS ON INDUSTRIAL INFORMATICS, 2018, 14 (02) :703-714