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Load power estimation based secondary control for microgrids | IEEE Conference Publication | IEEE Xplore

Load power estimation based secondary control for microgrids


Abstract:

The well-known active power-frequency and reactive power-voltage amplitude droop control is widely used in the coordinative control of parallel inverters in microgrids. H...Show More

Abstract:

The well-known active power-frequency and reactive power-voltage amplitude droop control is widely used in the coordinative control of parallel inverters in microgrids. However, this conventional droop method may cause frequency and voltage deviation, which affects the accuracy of power supply. This paper proposes a novel secondary control strategy to compensate this deviation. This strategy mimics the Master-Slave control but requires no communication lines among the parallel inverters. The master inverter adopts conventional droop method (using power to control frequency and voltage amplitude) and is controlled as a voltage source while the slave inverters adopt reversed droop method (using frequency and voltage amplitude to control power) and are controlled as current sources. The droop characteristic bias of slave inverters is designed online based on the estimation of load power demand. Through this method, frequency and voltage deviation can be eliminated and power sharing can be realized among all the slave inverters. Simulation and experimental results are provided to prove the effectiveness of the proposed control strategy.
Date of Conference: 01-05 June 2015
Date Added to IEEE Xplore: 30 July 2015
Electronic ISBN:978-8-9570-8254-6

ISSN Information:

Conference Location: Seoul, Korea (South)
References is not available for this document.

I. Introduction

Microgrid is a newly developed concept emerged with the increasing concern about the environment and the energy crisis. It is an integrated energy system consisting distributed generations (DGs) and interconnected loads [1]–[5]. In most cases, DGs are linked to a common bus through power electronics interface like inverters [6]–[7]. Therefore, the coordinative control of parallel inverters is attached high importance in the study of microgrids.

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References

References is not available for this document.