DocumentCode :
64196
Title :
Stochastic Analysis of Cascading-Failure Dynamics in Power Grids
Author :
Rahnamay-Naeini, M. ; Zhuoyao Wang ; Ghani, N. ; Mammoli, A. ; Hayat, Majeed M.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of New Mexico, Albuquerque, NM, USA
Volume :
29
Issue :
4
fYear :
2014
fDate :
Jul-14
Firstpage :
1767
Lastpage :
1779
Abstract :
A scalable and analytically tractable probabilistic model for the cascading failure dynamics in power grids is constructed while retaining key physical attributes and operating characteristics of the power grid. The approach is based upon extracting a reduced abstraction of large-scale power grids using a small number of aggregate state variables while modeling the system dynamics using a continuous-time Markov chain. The aggregate state variables represent critical power-grid attributes, which have been shown, from prior simulation-based and historical-data-based analysis, to strongly influence the cascading behavior. The transition rates among states are formulated in terms of certain parameters that capture grid´s operating characteristics comprising loading level, error in transmission-capacity estimation, and constraints in performing load shedding. The model allows the prediction of the evolution of blackout probability in time. Moreover, the asymptotic analysis of the blackout probability enables the calculation of the probability mass function of the blackout size. A key benefit of the model is that it enables the characterization of the severity of cascading failures in terms of the operating characteristics of the power grid..
Keywords :
Markov processes; failure analysis; load shedding; power grids; power system reliability; probability; aggregate state variables; analytic tractable probabilistic model; blackout probability asymptotic analysis; blackout size; capture grid operating characteristics; cascading behavior; cascading-failure dynamics; continuous-time Markov chain; historical-data-based analysis; key physical attributes; large-scale power grids; load shedding; loading level; power-grid attributes; probability mass function; reduced abstraction extraction; scalable tractable probabilistic model; simulation-based analysis; stochastic analysis; transition rates; transmission-capacity estimation; Abstracts; Analytical models; Load modeling; Mathematical model; Power grids; Power system faults; Power system protection; Blackout probability; Markov chain; cascading failures; power grids; stochastic analysis;
fLanguage :
English
Journal_Title :
Power Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8950
Type :
jour
DOI :
10.1109/TPWRS.2013.2297276
Filename :
6714578
Link To Document :
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