TY - JOUR
T1 - Distributed Periodic Event-Triggered Algorithm for Current Sharing and Voltage Regulation in DC Microgrids
AU - Fan, Bo
AU - Peng, Jiangkai
AU - Yang, Qinmin
AU - Liu, Wenxin
N1 - Publisher Copyright:
© 2010-2012 IEEE.
PY - 2020/1
Y1 - 2020/1
N2 - In modern control systems, most control algorithms, especially system-level ones, are implemented in discrete-time (DT) with digital controllers and digital communications. In this paper, a distributed DT algorithm is developed to achieve proportional load current sharing and average bus voltage regulation in DC microgrids. In order to reduce the communication requirement among the controllers, a periodic event-triggered (PET) DT algorithm is proposed by introducing a novel PET condition. Since the PET condition is detected periodically, the Zeno phenomenon existing in continuous-time (CT) event-triggered algorithms can be avoided. The communication burden for detecting the PET condition is also relieved since only the local and neighbors' triggered information is required. Through the Lyapunov synthesis, the current sharing error is proved to converge to zero asymptotically. Finally, comparative results among different algorithms, based on a detailed switch-level microgrid model, are given to validate the effectiveness of the proposed PET control design.
AB - In modern control systems, most control algorithms, especially system-level ones, are implemented in discrete-time (DT) with digital controllers and digital communications. In this paper, a distributed DT algorithm is developed to achieve proportional load current sharing and average bus voltage regulation in DC microgrids. In order to reduce the communication requirement among the controllers, a periodic event-triggered (PET) DT algorithm is proposed by introducing a novel PET condition. Since the PET condition is detected periodically, the Zeno phenomenon existing in continuous-time (CT) event-triggered algorithms can be avoided. The communication burden for detecting the PET condition is also relieved since only the local and neighbors' triggered information is required. Through the Lyapunov synthesis, the current sharing error is proved to converge to zero asymptotically. Finally, comparative results among different algorithms, based on a detailed switch-level microgrid model, are given to validate the effectiveness of the proposed PET control design.
KW - Current sharing
KW - DC microgrid
KW - discrete-time (DT) control
KW - event-triggered algorithm
KW - voltage regulation
UR - https://www.scopus.com/pages/publications/85077393336
U2 - 10.1109/TSG.2019.2926108
DO - 10.1109/TSG.2019.2926108
M3 - 文章
AN - SCOPUS:85077393336
SN - 1949-3053
VL - 11
SP - 577
EP - 589
JO - IEEE Transactions on Smart Grid
JF - IEEE Transactions on Smart Grid
IS - 1
M1 - 8752414
ER -