DocumentCode :
3003837
Title :
A cyber-physical approach to a wide-area actionable system for the power grid
Author :
Allen, Jason D. ; Xiuwen Liu ; Lozano, I. ; Xin Yuan
Author_Institution :
Oak Ridge Nat. Lab., Oak Ridge, TN, USA
fYear :
2012
fDate :
Oct. 29 2012-Nov. 1 2012
Firstpage :
1
Lastpage :
6
Abstract :
Unexpected occurrences of large-area cascading failures due to small disturbances in worldwide electricity grids serve as evidence of their intrinsic instability. As the grid is the most fundamental critical infrastructure in any modern society, detection and mitigation of such cascading failures due to accidental failures or malicious attacks are of vital importance to both civilian and military applications. However, due to the unique physical properties of electricity, such as its travel speed, systems must be able to react within a fraction of second in order to detect and prevent occurrences of cascading failures. In this paper, by modeling the grid as a cyber-physical system, we propose a decentralized, hierarchical framework to develop and implement a wide-area actionable system, capable of detecting and mitigating potential cascading failures. The states of the grid and physical constraints are modeled as manifolds, and evolution of the grid becomes a path on the manifold. By decomposing the grid into resilience zones with minimal power flow between them, we utilize precomputed scenarios in each resilience zone to develop a parametrized model. During deployment, online phasor measurements will be used to estimate the stability within each zone and interactions among them. The detection of cascading failures will be based on the detection of cascading failing paths among the K hop trees built for each zone. We illustrate the effectiveness of the proposed approach using the 2003 Italy blackout scenarios, and we discuss practical requirements in order to deploy such a system.
Keywords :
critical infrastructures; failure analysis; load flow; phasor measurement; power grids; power system faults; power system reliability; power system stability; Italy blackout scenarios; accidental failures; cyber-physical approach; decentralized hierarchical framework; electricity grids; fundamental critical infrastructure; intrinsic instability; k-hop trees; large-area cascading failures; malicious attacks; minimal power flow; online phasor measurements; potential cascading failure detection; power grid; wide-area actionable system; Computational modeling; Manifolds; Phasor measurement units; Power system faults; Power system protection; Power system stability; Resilience; Wide Area Actionable System; cascading failures; cyber-physical systems; decentralized hierarchical control; power systems;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
MILITARY COMMUNICATIONS CONFERENCE, 2012 - MILCOM 2012
Conference_Location :
Orlando, FL
ISSN :
2155-7578
Print_ISBN :
978-1-4673-1729-0
Type :
conf
DOI :
10.1109/MILCOM.2012.6415666
Filename :
6415666
Link To Document :
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