Title :
A Markov-Transition Model for Cascading Failures in Power Grids
Author :
Wang, Zhifang ; Scaglione, Anna ; Thomas, Robert J.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of California, Davis, CA, USA
Abstract :
The electric power grid is a complex critical infrastructure network. Its inter-connectivity enables long-distance transmission of power for more efficient system operation. The same inter-connectivity, however, also allows the propagation of disturbances. In fact, blackouts due to cascading failures occur because of the intrinsic electrical properties of this propagation and physical mechanisms that are triggered by it. In this paper we propose a stochastic Markov model, whose transition probabilities are derived from a stochastic model for the flow redistribution, that can potentially capture the progression of cascading failures and its time span. We suggest a metric that should be monitored to expose the risk of failure and the time margin that is left to perform corrective action. Finally we experiment with the proposed stochastic model on the IEEE 300 bus system and provide numerical analysis.
Keywords :
Markov processes; power grids; power system faults; IEEE 300 bus system; Markov-transition model; cascading failures; complex critical infrastructure network; electric power grid; flow redistribution; intrinsic electrical properties; long-distance transmission; numerical analysis; stochastic Markov model; system operation; time margin; transition probabilities; Analytical models; Load modeling; Power grids; Power system faults; Power system protection; Transmission line matrix methods; Vectors; Cascading failures; Electrical Power Grids; Markov Transition;
Conference_Titel :
System Science (HICSS), 2012 45th Hawaii International Conference on
Conference_Location :
Maui, HI
Print_ISBN :
978-1-4577-1925-7
Electronic_ISBN :
1530-1605
DOI :
10.1109/HICSS.2012.63