DocumentCode :
3601510
Title :
Energy-Event-Triggered Hybrid Supervisory Control for Cyber-Physical Network Systems
Author :
Xianlin Zeng ; Qing Hui
Author_Institution :
Key Lab. of Syst. & Control, Inst. of Syst. Sci., Beijing, China
Volume :
60
Issue :
11
fYear :
2015
Firstpage :
3083
Lastpage :
3088
Abstract :
This technical note develops energy-event-triggered hybrid supervisory control techniques to address robust and fast energy equipartition for cyber-physical network systems, and discusses the application of the proposed approach to power systems. First, we present a hybrid controller with a distributed feedback and supervisory energy-event-triggered resetting law to achieve the robust disturbance rejection performance of physical networks by mimicking thermodynamic systems. The proposed controller architectures are constructed in such a way that each controller has a one-directional energy transfer from a plant to itself, and exchanges energy with its neighboring controllers. Specifically, if the cyber-physical system is lossless, this controller can prevent cascading behaviors. Second, we propose a consensus hybrid controller that mitigates the disturbance effect by decentralizing the disturbance on one plant to all the other plants when stabilizing it. In addition, a new combined hybrid controller based on the two precedent hybrid controllers is proposed to achieve cascade prevention and fast energy equipartition for lossless cyber-physical network systems. Finally, we apply our hybrid control technique to power systems, and simulation studies are carried out to show the efficacy of the proposed approach.
Keywords :
control system synthesis; distributed control; feedback; power system control; cascade prevention; consensus hybrid controller; cyber-physical network systems; distributed feedback; disturbance rejection performance; energy equipartition; energy-event-triggered hybrid supervisory control; one-directional energy transfer; power systems; supervisory energy-event-triggered resetting law; thermodynamic systems; Closed loop systems; Energy exchange; Hybrid power systems; Power system stability; Robustness; Thermodynamics; Cyber-physical network systems; energy-event-triggered resetting law; hybrid supervisory control; thermodynamics systems;
fLanguage :
English
Journal_Title :
Automatic Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9286
Type :
jour
DOI :
10.1109/TAC.2015.2409900
Filename :
7054528
Link To Document :
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