LAPSE:2023.26291
Published Article

LAPSE:2023.26291
State of Charge Control Integrated with Load Frequency Control for BESS in Islanded Microgrid
April 3, 2023
Abstract
The dependence of distributed generations (DGs) on climate conditions and fluctuating load demands are the challenges for the implementation of battery energy storage systems (BESSs) in islanded microgrids. BESS participation in system frequency regulation becomes one of the solutions to those challenges. Frequency regulation by BESS can be realized by applying the load-frequency control (LFC) in BESS. However, this participation clearly poses problems for the battery state of charge (SOC), as the battery is often overcharged or undercharged. In this paper, a control that maintains SOC at a certain level is introduced. This control strategy focuses on the battery operation function, which is determined from five control scenarios. All scenarios are achieved by applying the droop reference shifting method in the LFC to allow battery operation change. Control verification is carried out on an islanded microgrid system that experiences load demand changes and photovoltaic (PV) output power changes. The test results show that the SOC is maintained at 45−75% by applying load and PV power variations. The results correspond to the predetermined criteria control.
The dependence of distributed generations (DGs) on climate conditions and fluctuating load demands are the challenges for the implementation of battery energy storage systems (BESSs) in islanded microgrids. BESS participation in system frequency regulation becomes one of the solutions to those challenges. Frequency regulation by BESS can be realized by applying the load-frequency control (LFC) in BESS. However, this participation clearly poses problems for the battery state of charge (SOC), as the battery is often overcharged or undercharged. In this paper, a control that maintains SOC at a certain level is introduced. This control strategy focuses on the battery operation function, which is determined from five control scenarios. All scenarios are achieved by applying the droop reference shifting method in the LFC to allow battery operation change. Control verification is carried out on an islanded microgrid system that experiences load demand changes and photovoltaic (PV) output power changes. The test results show that the SOC is maintained at 45−75% by applying load and PV power variations. The results correspond to the predetermined criteria control.
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Keywords
battery energy storage system, islanded microgrid, load frequency control, state of charge
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Suggested Citation
Sitompul S, Hanawa Y, Bupphaves V, Fujita G. State of Charge Control Integrated with Load Frequency Control for BESS in Islanded Microgrid. (2023). LAPSE:2023.26291
Author Affiliations
Sitompul S: Department of Electrical and Electronics Engineering, Shibaura Institute of Technology, 3-7-5 Toyosu, Tokyo 135-8548, Japan [ORCID]
Hanawa Y: Department of Electrical and Electronics Engineering, Shibaura Institute of Technology, 3-7-5 Toyosu, Tokyo 135-8548, Japan
Bupphaves V: Nippon Koei Co., Ltd., 4-2 Kojimachi, Tokyo 102-8539, Japan
Fujita G: Department of Electrical and Electronics Engineering, Shibaura Institute of Technology, 3-7-5 Toyosu, Tokyo 135-8548, Japan
Hanawa Y: Department of Electrical and Electronics Engineering, Shibaura Institute of Technology, 3-7-5 Toyosu, Tokyo 135-8548, Japan
Bupphaves V: Nippon Koei Co., Ltd., 4-2 Kojimachi, Tokyo 102-8539, Japan
Fujita G: Department of Electrical and Electronics Engineering, Shibaura Institute of Technology, 3-7-5 Toyosu, Tokyo 135-8548, Japan
Journal Name
Energies
Volume
13
Issue
18
Article Number
E4657
Year
2020
Publication Date
2020-09-08
ISSN
1996-1073
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Original Submission
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PII: en13184657, Publication Type: Journal Article
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LAPSE:2023.26291
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https://doi.org/10.3390/en13184657
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