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Advanced Battery Storage Control for an Autonomous Microgrid.

Authors :
Majumder, Ritwik
Chakrabarti, Saikat
Ledwich, Gerard
Ghosh, Arindam
Source :
Electric Power Components & Systems; Jan2013, Vol. 41 Issue 2, p157-181, 25p
Publication Year :
2013

Abstract

A new control method for battery storage to maintain acceptable voltage profile in autonomous microgrids is proposed in this article. The proposed battery control ensures that the bus voltages in the microgrid are maintained during disturbances such as load change, loss of micro-sources, or distributed generations hitting power limit. Unlike the conventional storage control based on local measurements, the proposed method is based on an advanced control technique, where the reference power is determined based on the voltage drop profile at the battery bus. An artificial neural network based controller is used to determine the reference power needed for the battery to hold the microgrid voltage within regulation limits. The pattern of drop in the local bus voltage during power imbalance is used to train the controller off-line. During normal operation, the battery floats with the local bus voltage without any power injection. The battery is charged or discharged during the transients with a high gain feedback loop. Depending on the rate of voltage fall, it is switched to power control mode to inject the reference power determined by the proposed controller. After a defined time period, the battery power injection is reduced to zero using slow reverse-droop characteristics, ensuring a slow rate of increase in power demand from the other distributed generations. The proposed control method is simulated for various operating conditions in a microgrid with both inertial and converter interfaced sources. The proposed battery control provides a quick load pick up and smooth load sharing with the other micro-sources in a disturbance. With various disturbances, maximum voltage drop over 8% with conventional energy storage is reduced within 2.5% with the proposed control method. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
15325008
Volume :
41
Issue :
2
Database :
Complementary Index
Journal :
Electric Power Components & Systems
Publication Type :
Academic Journal
Accession number :
84918842
Full Text :
https://doi.org/10.1080/15325008.2012.738351