Design and Performance Evaluation of SMC-Based DC–DC Converters for Microgrid Applications
In recent times, DC microgrids (MGs) have received significant attention due to environmental concerns and the demand for clean energies. Energy storage systems (ESSs) and photovoltaic (PV) systems are parts of DC MGs. This paper expands on the modeling and control of non-isolated, non-inverting fou...
| Published in: | Energies |
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| Main Authors: | , , , |
| Format: | Article |
| Language: | English |
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MDPI AG
2023-05-01
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| Online Access: | https://www.mdpi.com/1996-1073/16/10/4212 |
| _version_ | 1850074452856930304 |
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| author | Qudrat Ullah Tiago Davi Curi Busarello Danilo Iglesias Brandao Marcelo Godoy Simões |
| author_facet | Qudrat Ullah Tiago Davi Curi Busarello Danilo Iglesias Brandao Marcelo Godoy Simões |
| author_sort | Qudrat Ullah |
| collection | DOAJ |
| container_title | Energies |
| description | In recent times, DC microgrids (MGs) have received significant attention due to environmental concerns and the demand for clean energies. Energy storage systems (ESSs) and photovoltaic (PV) systems are parts of DC MGs. This paper expands on the modeling and control of non-isolated, non-inverting four-switch buck-boost (FSBB) synchronous converters, which interface with a wide range of low-power electronic appliances. The proposed power converter can work efficiently both independently and in DC MGs. The charging and discharging of the battery are analyzed using the FSBB converter at a steady state in continuous conduction mode (CCM). A boost converter is connected to a PV system, which is then connected in parallel to the battery to provide voltages at the DC bus. Finally, another FSBB converter is connected to a resistive load that successfully performs the boost-and-buck operation with smooth transitions. Since these power converters possess uncertainties and non-linearities, it is not suitable to design linear controllers for these systems. Therefore, the controlling mechanism for these converters’ operation is based on the sliding mode control (SMC). In this study, various macro-level interests were achieved using SMC. The MATLAB Simulink results successfully prove the precise reference tracking and robust stability in different operating modes of DC–DC converters in a MG structure. |
| format | Article |
| id | doaj-art-27dfd36bafec44cd9e633f9f009af54a |
| institution | Directory of Open Access Journals |
| issn | 1996-1073 |
| language | English |
| publishDate | 2023-05-01 |
| publisher | MDPI AG |
| record_format | Article |
| spelling | doaj-art-27dfd36bafec44cd9e633f9f009af54a2025-08-20T00:16:04ZengMDPI AGEnergies1996-10732023-05-011610421210.3390/en16104212Design and Performance Evaluation of SMC-Based DC–DC Converters for Microgrid ApplicationsQudrat Ullah0Tiago Davi Curi Busarello1Danilo Iglesias Brandao2Marcelo Godoy Simões3School of Technology and Innovations, University of Vaasa, 65100 Vaasa, FinlandSchool of Technology and Innovations, University of Vaasa, 65100 Vaasa, FinlandGraduate Program in Electrical Engineering, Federal University of Minas Gerais (UFMG), Antônio Carlos 6627, Belo Horizonte 31270-901, MG, BrazilSchool of Technology and Innovations, University of Vaasa, 65100 Vaasa, FinlandIn recent times, DC microgrids (MGs) have received significant attention due to environmental concerns and the demand for clean energies. Energy storage systems (ESSs) and photovoltaic (PV) systems are parts of DC MGs. This paper expands on the modeling and control of non-isolated, non-inverting four-switch buck-boost (FSBB) synchronous converters, which interface with a wide range of low-power electronic appliances. The proposed power converter can work efficiently both independently and in DC MGs. The charging and discharging of the battery are analyzed using the FSBB converter at a steady state in continuous conduction mode (CCM). A boost converter is connected to a PV system, which is then connected in parallel to the battery to provide voltages at the DC bus. Finally, another FSBB converter is connected to a resistive load that successfully performs the boost-and-buck operation with smooth transitions. Since these power converters possess uncertainties and non-linearities, it is not suitable to design linear controllers for these systems. Therefore, the controlling mechanism for these converters’ operation is based on the sliding mode control (SMC). In this study, various macro-level interests were achieved using SMC. The MATLAB Simulink results successfully prove the precise reference tracking and robust stability in different operating modes of DC–DC converters in a MG structure.https://www.mdpi.com/1996-1073/16/10/4212modelingcontrolDC–DC convertersliding mode controllerDC microgrid |
| spellingShingle | Qudrat Ullah Tiago Davi Curi Busarello Danilo Iglesias Brandao Marcelo Godoy Simões Design and Performance Evaluation of SMC-Based DC–DC Converters for Microgrid Applications modeling control DC–DC converter sliding mode controller DC microgrid |
| title | Design and Performance Evaluation of SMC-Based DC–DC Converters for Microgrid Applications |
| title_full | Design and Performance Evaluation of SMC-Based DC–DC Converters for Microgrid Applications |
| title_fullStr | Design and Performance Evaluation of SMC-Based DC–DC Converters for Microgrid Applications |
| title_full_unstemmed | Design and Performance Evaluation of SMC-Based DC–DC Converters for Microgrid Applications |
| title_short | Design and Performance Evaluation of SMC-Based DC–DC Converters for Microgrid Applications |
| title_sort | design and performance evaluation of smc based dc dc converters for microgrid applications |
| topic | modeling control DC–DC converter sliding mode controller DC microgrid |
| url | https://www.mdpi.com/1996-1073/16/10/4212 |
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