TY - JOUR
T1 - Quantum Distributed Event-Triggered Frequency Control for AC Microgrids Under FDIAs
AU - Meng, Jin
AU - Hu, Jianqiang
AU - Shi, Xinli
AU - Guerrero, Josep M.
AU - Cao, Jinde
N1 - Publisher Copyright:
© 2010-2012 IEEE All rights reserved.
PY - 2025
Y1 - 2025
N2 - The distributed frequency control system of microgrids, which relies on classical communication networks between distributed generations (DGs) for frequency regulation and restoration, is vulnerable to cyber-attacks. Quantum distributed controllers offer a secure quantum communication scheme but are less efficient because of continuous communication in quantum systems. This paper proposes a quantum distributed event-triggered secondary frequency control strategy for the islanded AC microgrid. The suggested event-triggered control significantly lessens the communication load and is Zeno-free. Furthermore, a novel false data injection attack (FDIA) scenario is introduced for the quantum-microgrid system. The non-periodic nature of communication can be exploited to directly identify and isolate compromised communication links, thereby enhancing the resilience of the quantum-microgrid system. Finally, simulation results on an AC microgrid with four DGs validate the effectiveness of the suggested control scheme.
AB - The distributed frequency control system of microgrids, which relies on classical communication networks between distributed generations (DGs) for frequency regulation and restoration, is vulnerable to cyber-attacks. Quantum distributed controllers offer a secure quantum communication scheme but are less efficient because of continuous communication in quantum systems. This paper proposes a quantum distributed event-triggered secondary frequency control strategy for the islanded AC microgrid. The suggested event-triggered control significantly lessens the communication load and is Zeno-free. Furthermore, a novel false data injection attack (FDIA) scenario is introduced for the quantum-microgrid system. The non-periodic nature of communication can be exploited to directly identify and isolate compromised communication links, thereby enhancing the resilience of the quantum-microgrid system. Finally, simulation results on an AC microgrid with four DGs validate the effectiveness of the suggested control scheme.
KW - Distributed frequency regulation
KW - event-triggered control
KW - islanded AC microgrid
KW - quantum distributed control
UR - http://www.scopus.com/inward/record.url?scp=85211971257&partnerID=8YFLogxK
U2 - 10.1109/TSG.2024.3513464
DO - 10.1109/TSG.2024.3513464
M3 - Journal article
AN - SCOPUS:85211971257
SN - 1949-3053
VL - 16
SP - 903
EP - 915
JO - IEEE Transactions on Smart Grid
JF - IEEE Transactions on Smart Grid
IS - 2
ER -