Hardware-in-the-loop testing of a battery energy storage controller for harbour area smart grid: A case study for Vaasa harbour grid

A battery energy storage controller (BESC) can balance the mismatch of power demand and supply and improve flexibility and resiliency of seaport microgrids. However, it is required to test functionality of the BESC, and validate that it can balance the power supply–demand imbalance by charging and d...

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Main Authors: Jagdesh Kumar, Mike Mekkanen, Mazaher Karimi, Kimmo Kauhaniemi
Format: Article
Language:English
Published: Elsevier 2023-05-01
Series:Energy Reports
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2352484723000720
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author Jagdesh Kumar
Mike Mekkanen
Mazaher Karimi
Kimmo Kauhaniemi
author_facet Jagdesh Kumar
Mike Mekkanen
Mazaher Karimi
Kimmo Kauhaniemi
author_sort Jagdesh Kumar
collection DOAJ
description A battery energy storage controller (BESC) can balance the mismatch of power demand and supply and improve flexibility and resiliency of seaport microgrids. However, it is required to test functionality of the BESC, and validate that it can balance the power supply–demand imbalance by charging and discharging the battery. The main objective of this study is to implement hardware-in-loop (HIL) tests for validating the controller’s functionality. This article investigates the testing performance of the BESC that will be used in harbour grids to adjust for the mismatch of power supply and load demand by appropriately charging and discharging the battery energy storage system. The proposed BESC can effectively save energy and reduce peak load demand in harbour grids with limited transmission and distribution network power capacities. The BESC is initially developed offline in MATLAB/Simulink and then implemented in a FPGA based external controller interfaced with the OPAL-RT real-time simulator by using the IEC61850 communication protocol and GOOSE messages. The BESC is configured and implemented on the external FPGA board. In addition, real data from the local distribution system operator Vaasan Sahkoverkko and the harbour operator Kvarken port of Vaasa have been utilized to evaluate the efficacy of the suggested control algorithm for the battery energy storage system with a realistic scenario. The simulation findings indicate that the BESC can balance electricity demand within the microgrid by charging and discharging batteries.
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spelling doaj.art-c68bedd3aa9043308876d941604fd16a2023-06-07T04:48:48ZengElsevierEnergy Reports2352-48472023-05-019447454Hardware-in-the-loop testing of a battery energy storage controller for harbour area smart grid: A case study for Vaasa harbour gridJagdesh Kumar0Mike Mekkanen1Mazaher Karimi2Kimmo Kauhaniemi3Corresponding author.; The School of Technology and Innovations, University of Vaasa, FI-65101, Vaasa, FinlandThe School of Technology and Innovations, University of Vaasa, FI-65101, Vaasa, FinlandThe School of Technology and Innovations, University of Vaasa, FI-65101, Vaasa, FinlandThe School of Technology and Innovations, University of Vaasa, FI-65101, Vaasa, FinlandA battery energy storage controller (BESC) can balance the mismatch of power demand and supply and improve flexibility and resiliency of seaport microgrids. However, it is required to test functionality of the BESC, and validate that it can balance the power supply–demand imbalance by charging and discharging the battery. The main objective of this study is to implement hardware-in-loop (HIL) tests for validating the controller’s functionality. This article investigates the testing performance of the BESC that will be used in harbour grids to adjust for the mismatch of power supply and load demand by appropriately charging and discharging the battery energy storage system. The proposed BESC can effectively save energy and reduce peak load demand in harbour grids with limited transmission and distribution network power capacities. The BESC is initially developed offline in MATLAB/Simulink and then implemented in a FPGA based external controller interfaced with the OPAL-RT real-time simulator by using the IEC61850 communication protocol and GOOSE messages. The BESC is configured and implemented on the external FPGA board. In addition, real data from the local distribution system operator Vaasan Sahkoverkko and the harbour operator Kvarken port of Vaasa have been utilized to evaluate the efficacy of the suggested control algorithm for the battery energy storage system with a realistic scenario. The simulation findings indicate that the BESC can balance electricity demand within the microgrid by charging and discharging batteries.http://www.sciencedirect.com/science/article/pii/S2352484723000720Battery Energy Storage SystemHardware-in-loopHarbour gridIEC61850 standardMicrogridPower Control
spellingShingle Jagdesh Kumar
Mike Mekkanen
Mazaher Karimi
Kimmo Kauhaniemi
Hardware-in-the-loop testing of a battery energy storage controller for harbour area smart grid: A case study for Vaasa harbour grid
Energy Reports
Battery Energy Storage System
Hardware-in-loop
Harbour grid
IEC61850 standard
Microgrid
Power Control
title Hardware-in-the-loop testing of a battery energy storage controller for harbour area smart grid: A case study for Vaasa harbour grid
title_full Hardware-in-the-loop testing of a battery energy storage controller for harbour area smart grid: A case study for Vaasa harbour grid
title_fullStr Hardware-in-the-loop testing of a battery energy storage controller for harbour area smart grid: A case study for Vaasa harbour grid
title_full_unstemmed Hardware-in-the-loop testing of a battery energy storage controller for harbour area smart grid: A case study for Vaasa harbour grid
title_short Hardware-in-the-loop testing of a battery energy storage controller for harbour area smart grid: A case study for Vaasa harbour grid
title_sort hardware in the loop testing of a battery energy storage controller for harbour area smart grid a case study for vaasa harbour grid
topic Battery Energy Storage System
Hardware-in-loop
Harbour grid
IEC61850 standard
Microgrid
Power Control
url http://www.sciencedirect.com/science/article/pii/S2352484723000720
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