DocumentCode :
766330
Title :
Neural network-based estimation of power electronic waveforms
Author :
Kim, Min-Huei ; Simões, M. Godoy ; Bose, Bimal K.
Author_Institution :
Yeung-Nam Junior Coll., Teagu, South Korea
Volume :
11
Issue :
2
fYear :
1996
fDate :
3/1/1996 12:00:00 AM
Firstpage :
383
Lastpage :
389
Abstract :
Artificial neural network techniques are indicating a lot of promise for application in power electronic systems. So far, these applications are mainly confined to control, identification, and diagnostic problems, but the application in estimation is fairly new. The paper explores the application of neural networks for estimation of power electronic waveforms. The distorted line current waveforms in a single-phase thyristor AC controller and a three-phase diode rectifier that feeds an inverter-machine load have been taken into consideration, and neural networks have been trained to estimate the total RMS current, fundamental RMS current, displacement factor, and power factor. The performance of the neural network-based estimators has been compared with the actual values, and excellent performance is indicated. Neural network-based estimation has the usual advantages of very fast and simultaneous response of all the outputs, noise, and fault-tolerant performance and can be easily implemented in dedicated analog or digital hardware chips, which can coexist with digital signal processor (DSP) and/or application-specific integrated circuit (ASIC) chips. The estimation techniques can be extended to more complex waveforms in power electronics
Keywords :
electric current control; neural nets; parameter estimation; power engineering computing; rectifying circuits; thyristor circuits; waveform analysis; ASIC chips; DSP; application-specific integrated circuit chips; control; dedicated analog hardware chips; dedicated digital hardware chips; diagnostic problems; digital signal processor; displacement factor; distorted line current waveforms; fault-tolerant performance; fundamental RMS current estimation; identification; inverter-machine load; neural network-based estimation; power electronic waveforms; power factor; single-phase thyristor AC controller; three-phase diode rectifier; total RMS current estimation; Application specific integrated circuits; Artificial neural networks; Diodes; Displacement control; Feeds; Neural networks; Power electronics; Reactive power; Rectifiers; Thyristors;
fLanguage :
English
Journal_Title :
Power Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8993
Type :
jour
DOI :
10.1109/63.486189
Filename :
486189
Link To Document :
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