DocumentCode :
1777343
Title :
Complexity analysis of power system energy flow
Author :
Jing Gou ; Junyong Liu ; Taylor, Gareth Anthony ; Saunders, Christopher Scott ; Youbo Liu
Author_Institution :
Sch. of Electr. Eng. & Inf. Technol., Sichuan Univ., Chengdu, China
fYear :
2014
fDate :
20-22 Oct. 2014
Firstpage :
199
Lastpage :
203
Abstract :
Research on the dynamic behavior of power system fault propagation is useful for understanding the evolution of system states, which can yield rapid awareness of the system operation state. An energy function model is established, which is based on power system dynamic equations, to extract the system energy information after a fault occurrence. The complexity of the evolving system energy flow is analyzed by applying the multi-scale entropy method. The analysis results show that the complexity of the fault propagation rises with the increasing fault duration time. The system energy flow complexity of a stable state is shown to be measurably reduced as compared to that produced by unstable faults. Moreover, the system complexity of unstable states is a combination of uncertainty during small time scales and regularity on large time scales. The most important features are the system complexities of the critical stable state and the critical unstable state, which are clearly distinct on these different time scales. Such a difference can be used as an important metric to distinguish the critical stable state and the critical unstable state. Research results can provide new ideas and methods for investigating the power energy flow evolution with respect to the dynamic behaviors of fault propagation.
Keywords :
entropy; load flow; power system faults; complexity analysis; energy function model; fault duration time; fault occurrence; multiscale entropy method; power energy flow evolution; power system dynamic equations; power system energy flow; power system fault propagation; system energy flow complexity; system energy information; system operation state; Complexity theory; Entropy; Power system dynamics; Power system stability; Time series analysis; Transient analysis; complexity analysis; dynamics on networks; multiscale entropy; power system energy flow;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power System Technology (POWERCON), 2014 International Conference on
Conference_Location :
Chengdu
Type :
conf
DOI :
10.1109/POWERCON.2014.6993581
Filename :
6993581
Link To Document :
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