DocumentCode :
1586593
Title :
A neural network based wide area monitor for a power system
Author :
Li, Xiaomeng ; Venayagamoorthy, Ganesh K.
Author_Institution :
Lab. of Real-Time Power & Intelligent Syst., Missouri Univ., Rolla, MO, USA
fYear :
2005
Firstpage :
1455
Abstract :
With the deregulation of power industry, many tie lines between control areas are driven to operate near their maximum capacity, especially those serving heavy load centers. Wide area controllers (WACs) using wide-area or global signals can provide remote auxiliary control signals to local controllers such as automatic voltage regulators, power system stabilizers, etc to damp out inter-area oscillations. The power system is highly nonlinear system with fast changing dynamics. In order to have an efficient WAC, an online system monitor/predictor is required to provide inter-area information to the WAC from time to time. This paper presents the design of an online wide area monitor (WAM) using a neural network called the wide area neuroidentifier (WANI). The WANI is used to predict ahead the speed deviations of generators in the different areas using phasor measurement unit (PMU). Results are presented to show the effectiveness of the wide area monitor for different disturbances.
Keywords :
computerised monitoring; control engineering computing; neurocontrollers; nonlinear control systems; phase measurement; power engineering computing; power system measurement; automatic voltage regulators; interarea oscillations; neural network; nonlinear system; online system monitor; phasor measurement unit; power industry deregulation; power system based wide area monitor; power system stabilizers; remote auxiliary control signals; wide area controllers; wide area neuroidentifier; Automatic control; Automatic voltage control; Control systems; Neural networks; Phasor measurement units; Power industry; Power system dynamics; Power systems; Regulators; Remote monitoring;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power Engineering Society General Meeting, 2005. IEEE
Print_ISBN :
0-7803-9157-8
Type :
conf
DOI :
10.1109/PES.2005.1489743
Filename :
1489743
Link To Document :
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