Decentralised Active Power Control Strategy for Real-Time Power Balance in an Isolated Microgrid with an Energy Storage System and Diesel Generators

Remote microgrids with battery energy storage systems (BESSs), diesel generators, and renewable energy sources (RESs) have recently received significant attention because of their improved power quality and remarkable capability of continuous power supply to loads. In this paper, a new proportional...

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Main Authors: Hyeon-Jin Moon, Young Jin Kim, Jae Won Chang, Seung-Il Moon
Format: Article
Language:English
Published: MDPI AG 2019-02-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/12/3/511
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spelling doaj-68277edd5f3b49c6b6bbb27c068f1e472020-11-24T23:56:42ZengMDPI AGEnergies1996-10732019-02-0112351110.3390/en12030511en12030511Decentralised Active Power Control Strategy for Real-Time Power Balance in an Isolated Microgrid with an Energy Storage System and Diesel GeneratorsHyeon-Jin Moon0Young Jin Kim1Jae Won Chang2Seung-Il Moon3Department of Electrical and Computer Engineering, Seoul National University, 1 Gwanak-ro, Seoul 08826, KoreaDepartment of Electrical Engineering, Pohang University of Science and Technology (POSTECH), Pohang, Gyungbuk 37673, KoreaDepartment of Electrical and Computer Engineering, Seoul National University, 1 Gwanak-ro, Seoul 08826, KoreaDepartment of Electrical and Computer Engineering, Seoul National University, 1 Gwanak-ro, Seoul 08826, KoreaRemote microgrids with battery energy storage systems (BESSs), diesel generators, and renewable energy sources (RESs) have recently received significant attention because of their improved power quality and remarkable capability of continuous power supply to loads. In this paper, a new proportional control method is proposed using frequency-bus-signaling to achieve real-time power balance continuously under an abnormal condition of short-term power shortage in a remote microgrid. Specifically, in the proposed method, the frequency generated by the grid-forming BESS is used as a global signal and, based on the signal, a diesel generator is then controlled indirectly. The frequency is controlled to be proportional to the AC voltage deviation of the grid-forming BESS to detect sudden power shortages and share active power with other generators. Unlike a conventional constant-voltage constant-frequency (CVCF) control method, the proposed method can be widely applied to optimise the use of distributed energy resources (DERs), while maintaining microgrid voltages within an allowable range, particularly when active power balance cannot be achieved only using CVCF control. For case studies, a comprehensive model of an isolated microgrid is developed using real data. Simulation results are obtained using MATLAB/Simulink to verify the effectiveness of the proposed method in improving primary active power control in the microgrid.https://www.mdpi.com/1996-1073/12/3/511microgridenergy storage systemdistributed generatorfrequency controlactive power controlautonomous controldroop controlfrequency bus-signaling
collection DOAJ
language English
format Article
sources DOAJ
author Hyeon-Jin Moon
Young Jin Kim
Jae Won Chang
Seung-Il Moon
spellingShingle Hyeon-Jin Moon
Young Jin Kim
Jae Won Chang
Seung-Il Moon
Decentralised Active Power Control Strategy for Real-Time Power Balance in an Isolated Microgrid with an Energy Storage System and Diesel Generators
Energies
microgrid
energy storage system
distributed generator
frequency control
active power control
autonomous control
droop control
frequency bus-signaling
author_facet Hyeon-Jin Moon
Young Jin Kim
Jae Won Chang
Seung-Il Moon
author_sort Hyeon-Jin Moon
title Decentralised Active Power Control Strategy for Real-Time Power Balance in an Isolated Microgrid with an Energy Storage System and Diesel Generators
title_short Decentralised Active Power Control Strategy for Real-Time Power Balance in an Isolated Microgrid with an Energy Storage System and Diesel Generators
title_full Decentralised Active Power Control Strategy for Real-Time Power Balance in an Isolated Microgrid with an Energy Storage System and Diesel Generators
title_fullStr Decentralised Active Power Control Strategy for Real-Time Power Balance in an Isolated Microgrid with an Energy Storage System and Diesel Generators
title_full_unstemmed Decentralised Active Power Control Strategy for Real-Time Power Balance in an Isolated Microgrid with an Energy Storage System and Diesel Generators
title_sort decentralised active power control strategy for real-time power balance in an isolated microgrid with an energy storage system and diesel generators
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2019-02-01
description Remote microgrids with battery energy storage systems (BESSs), diesel generators, and renewable energy sources (RESs) have recently received significant attention because of their improved power quality and remarkable capability of continuous power supply to loads. In this paper, a new proportional control method is proposed using frequency-bus-signaling to achieve real-time power balance continuously under an abnormal condition of short-term power shortage in a remote microgrid. Specifically, in the proposed method, the frequency generated by the grid-forming BESS is used as a global signal and, based on the signal, a diesel generator is then controlled indirectly. The frequency is controlled to be proportional to the AC voltage deviation of the grid-forming BESS to detect sudden power shortages and share active power with other generators. Unlike a conventional constant-voltage constant-frequency (CVCF) control method, the proposed method can be widely applied to optimise the use of distributed energy resources (DERs), while maintaining microgrid voltages within an allowable range, particularly when active power balance cannot be achieved only using CVCF control. For case studies, a comprehensive model of an isolated microgrid is developed using real data. Simulation results are obtained using MATLAB/Simulink to verify the effectiveness of the proposed method in improving primary active power control in the microgrid.
topic microgrid
energy storage system
distributed generator
frequency control
active power control
autonomous control
droop control
frequency bus-signaling
url https://www.mdpi.com/1996-1073/12/3/511
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