Investigation of a simple energy management system of a hybrid PV-battery system

Growing energy demands are expected to render existing energy resources insufficient. Solar energy faces challenges in terms of providing continuous and reliable power supply to consumers. However, it has become increasingly important to implement renewable energy (RE) and energy management (EM) sys...

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Published in:OPTO-ELECTRONICS REVIEW
Main Authors: Mahdi, Baqer Saleh; Sulaiman, Nasri; Shehab, Mohanad Abd; Hassan, Siti Lailatul Mohd; Shafie, Suhaidi; Hizam, Hashim
Format: Article
Language:English
Published: POLISH ACAD SCIENCES 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001221831000002
author Mahdi
Baqer Saleh; Sulaiman
Nasri; Shehab
Mohanad Abd; Hassan
Siti Lailatul Mohd; Shafie
Suhaidi; Hizam
Hashim
spellingShingle Mahdi
Baqer Saleh; Sulaiman
Nasri; Shehab
Mohanad Abd; Hassan
Siti Lailatul Mohd; Shafie
Suhaidi; Hizam
Hashim
Investigation of a simple energy management system of a hybrid PV-battery system
Engineering; Optics; Physics
author_facet Mahdi
Baqer Saleh; Sulaiman
Nasri; Shehab
Mohanad Abd; Hassan
Siti Lailatul Mohd; Shafie
Suhaidi; Hizam
Hashim
author_sort Mahdi
spelling Mahdi, Baqer Saleh; Sulaiman, Nasri; Shehab, Mohanad Abd; Hassan, Siti Lailatul Mohd; Shafie, Suhaidi; Hizam, Hashim
Investigation of a simple energy management system of a hybrid PV-battery system
OPTO-ELECTRONICS REVIEW
English
Article
Growing energy demands are expected to render existing energy resources insufficient. Solar energy faces challenges in terms of providing continuous and reliable power supply to consumers. However, it has become increasingly important to implement renewable energy (RE) and energy management (EM) systems to increase the supply of power, improve efficiency, and maintain the stability of energy systems. As such, this present study integrated energy storage (ES) devices; namely, batteries and direct current (DC) to DC converters; into energy systems that support battery operation and effectively manage power flow, especially during peak load demands. The proposed system also addresses low solar irradiation and sudden load change scenarios by enabling the battery to operate in a discharge state to supply power to the load. Conversely, when the demand matches or exceeds the available solar energy, the battery is charged using solar power. The proposed system highlights the significance of RE systems and EM strategies in meeting growing energy demands and ensuring a reliable supply of power during solar variability and fluctuating loads. A MATLAB (R) Simulink model was used to evaluate the integration of a 200 kW photovoltaic (PV) array with a 380 V grid and 150 kW battery. The loads, consisting of a 100 kW and a 150 kW unit, were parallel connected. The results indicated that boost and three-phase (3Ph) inverters can be used to successfully integrate PV systems to the power grid to supply alternating current (AC) power. The inclusion of a battery also addressed power shortages during periods of insufficient power generation and to store surplus power.
POLISH ACAD SCIENCES
1230-3402
1896-3757
2024
32
1
10.24425/opelre.2023.148249
Engineering; Optics; Physics
hybrid
WOS:001221831000002
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001221831000002
title Investigation of a simple energy management system of a hybrid PV-battery system
title_short Investigation of a simple energy management system of a hybrid PV-battery system
title_full Investigation of a simple energy management system of a hybrid PV-battery system
title_fullStr Investigation of a simple energy management system of a hybrid PV-battery system
title_full_unstemmed Investigation of a simple energy management system of a hybrid PV-battery system
title_sort Investigation of a simple energy management system of a hybrid PV-battery system
container_title OPTO-ELECTRONICS REVIEW
language English
format Article
description Growing energy demands are expected to render existing energy resources insufficient. Solar energy faces challenges in terms of providing continuous and reliable power supply to consumers. However, it has become increasingly important to implement renewable energy (RE) and energy management (EM) systems to increase the supply of power, improve efficiency, and maintain the stability of energy systems. As such, this present study integrated energy storage (ES) devices; namely, batteries and direct current (DC) to DC converters; into energy systems that support battery operation and effectively manage power flow, especially during peak load demands. The proposed system also addresses low solar irradiation and sudden load change scenarios by enabling the battery to operate in a discharge state to supply power to the load. Conversely, when the demand matches or exceeds the available solar energy, the battery is charged using solar power. The proposed system highlights the significance of RE systems and EM strategies in meeting growing energy demands and ensuring a reliable supply of power during solar variability and fluctuating loads. A MATLAB (R) Simulink model was used to evaluate the integration of a 200 kW photovoltaic (PV) array with a 380 V grid and 150 kW battery. The loads, consisting of a 100 kW and a 150 kW unit, were parallel connected. The results indicated that boost and three-phase (3Ph) inverters can be used to successfully integrate PV systems to the power grid to supply alternating current (AC) power. The inclusion of a battery also addressed power shortages during periods of insufficient power generation and to store surplus power.
publisher POLISH ACAD SCIENCES
issn 1230-3402
1896-3757
publishDate 2024
container_volume 32
container_issue 1
doi_str_mv 10.24425/opelre.2023.148249
topic Engineering; Optics; Physics
topic_facet Engineering; Optics; Physics
accesstype hybrid
id WOS:001221831000002
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001221831000002
record_format wos
collection Web of Science (WoS)
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