DocumentCode :
1711854
Title :
Real-time Parameter Estimation of Dynamic Power Systems using Multiple Observers
Author :
Scholtz, Ernst ; Larsson, Mats ; Korba, Petr
Author_Institution :
ABB Corp. Res., Raleigh, NC
fYear :
2007
Firstpage :
155
Lastpage :
160
Abstract :
In this paper we describe a method suitable for real-time estimation of parameters of differential algebraic equation (DAE) dynamical models, generally used to model power systems. The method uses multiple observers that run in parallel, processing the same measured data from the process under consideration. The outputs from these observers are then used in a secondary least-squares estimation (LSE) process in order to identify the unknown parameters. We will demonstrate this parameter estimation using multiple observers (PEMO) on a single machine infinite bus (SMIB) example (where the generator inertia, prime mover torque and damping of the generator are unknown). This method can also be used as a fault detection, isolation and identification (FDI) filter that tracks parameter changes that can be indicative of such events as line outages, load and generation changes in a power system. We illustrate this concept on a nine-bus example.
Keywords :
differential algebraic equations; least squares approximations; observers; parameter estimation; power system faults; differential algebraic equation dynamical models; dynamic power systems; fault detection isolation and identification filter; least-squares estimation process; multiple observers; real-time parameter estimation; single machine infinite bus; Damping; Differential algebraic equations; Least squares approximation; Parameter estimation; Power system dynamics; Power system measurements; Power system modeling; Power systems; Real time systems; Torque;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power Tech, 2007 IEEE Lausanne
Conference_Location :
Lausanne
Print_ISBN :
978-1-4244-2189-3
Electronic_ISBN :
978-1-4244-2190-9
Type :
conf
DOI :
10.1109/PCT.2007.4538309
Filename :
4538309
Link To Document :
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