Title :
Dynamic Voltage Restorer with Neural Network Controlled Voltage Disturbance Detector and Real-time Digital Voltage Control
Author :
Chung, Y.H. ; Kim, H.J. ; Kwon, G.H. ; Park, T.B. ; Kim, S.H. ; Kim, K.S. ; Choe, J.W.
Author_Institution :
LS Ind. Syst. R&D Center, Anyang
Abstract :
This paper describes the high power DVR (dynamic voltage restorer) with the new voltage disturbance detection method and the real-time digital PWM voltage control. The new voltage disturbance detector was implemented by using the delta rule of the neural network control. Through the proposed method, we can instantaneously track the peak value of each phase voltage under the severe unbalance voltage conditions. Compared to the conventional synchronous reference frame method, the proposed one shows the minimum time delay to determine the instance of the voltage sag or voltage swell event. Also real-time digital PWM voltage control technique was adopted, where the inverter output filter capacitance voltage, the filter reactor current and the load current are sampled to calculate the inverter PWM command for the next sampling interval. By using digital control, the disturbance voltage can be compensated to the reference voltage level within two sampling intervals. The proposed disturbance detector and the voltage compensator were applied to the high power DVR (440 V/1000 kVA) that was developed for the application of semiconductor manufacture plant. The performances of the proposed DVR control were verified through computer simulation and experimental results. Finally, conclusions are given.
Keywords :
PWM invertors; delays; digital control; neurocontrollers; power supply quality; power system restoration; voltage control; apparent power 1 MVA; computer simulation; dynamic voltage restorer; filter reactor current; inverter output filter capacitance voltage; load current; minimum time delay; neural network control; phase voltage; real-time digital PWM voltage control; reference voltage level; semiconductor manufacture plant; synchronous reference frame method; unbalance voltage conditions; voltage 440 V; voltage disturbance detection method; voltage sag; voltage swell event; Capacitance-voltage characteristics; Delay effects; Detectors; Digital filters; Neural networks; Pulse width modulation; Pulse width modulation inverters; Sampling methods; Voltage control; Voltage fluctuations; Dynamic Voltage Restorer; Neural Network; Real-time Digital Control; Voltage Sag/Swell;
Conference_Titel :
Power Engineering Society General Meeting, 2007. IEEE
Conference_Location :
Tampa, FL
Print_ISBN :
1-4244-1296-X
Electronic_ISBN :
1932-5517
DOI :
10.1109/PES.2007.386098