Three-Port Bi-Directional DC–DC Converter with Solar PV System Fed BLDC Motor Drive Using FPGA

The increased need for renewable energy systems to generate power, store energy, and connect energy storage devices with applications has become a major challenge. Energy storage using batteries is most appropriate for energy sources like solar, wind, etc. A non-isolated three-port DC–DC-converter e...

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Main Authors: Arun Kumar Udayakumar, Raghavendra Rajan Vijaya Raghavan, Mohamad Abou Houran, Rajvikram Madurai Elavarasan, Anushkannan Nedumaran Kalavathy, Eklas Hossain
Format: Article
Language:English
Published: MDPI AG 2023-01-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/16/2/624
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author Arun Kumar Udayakumar
Raghavendra Rajan Vijaya Raghavan
Mohamad Abou Houran
Rajvikram Madurai Elavarasan
Anushkannan Nedumaran Kalavathy
Eklas Hossain
author_facet Arun Kumar Udayakumar
Raghavendra Rajan Vijaya Raghavan
Mohamad Abou Houran
Rajvikram Madurai Elavarasan
Anushkannan Nedumaran Kalavathy
Eklas Hossain
author_sort Arun Kumar Udayakumar
collection DOAJ
description The increased need for renewable energy systems to generate power, store energy, and connect energy storage devices with applications has become a major challenge. Energy storage using batteries is most appropriate for energy sources like solar, wind, etc. A non-isolated three-port DC–DC-converter energy conversion unit is implemented feeding the brushless DCmotor drive. In this paper, a non-isolated three-port converter is designed and simulated for battery energy storage, interfaced with an output drive. Based on the requirements, the power extracted from the solar panel during the daytime is used to charge the batteries through the three-port converter. The proposed three-port converter is analyzed in terms of operating principles and power flow. An FPGA-based NI LabView PXI with SbRio interface is used to develop the suggested approach’s control hardware, and prototype model results are obtained to test the proposed three-port converter control system’s effectiveness and practicality. The overall efficiency of the converter’s output improves as a result. The success rate is 96.5 percent while charging an ESS, 98.1 percent when discharging an ESS, and 95.7 percent overall.
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spelling doaj.art-dce0dcc7f3fb42edbd0a5166782cf3b32023-11-30T22:01:42ZengMDPI AGEnergies1996-10732023-01-0116262410.3390/en16020624Three-Port Bi-Directional DC–DC Converter with Solar PV System Fed BLDC Motor Drive Using FPGAArun Kumar Udayakumar0Raghavendra Rajan Vijaya Raghavan1Mohamad Abou Houran2Rajvikram Madurai Elavarasan3Anushkannan Nedumaran Kalavathy4Eklas Hossain5Department of Electrical and Electronics Engineering, SRM Institute of Science and Technology, Ramapuram Campus, Chennai 600089, Tamilnadu, IndiaAutomotive Department, Harman Connected Services India Pvt. Ltd., Bengaluru 560095, Karnataka, IndiaSchool of Electrical Engineering, Xi’an Jiaotong University, Xi’an 710049, ChinaSchool of Information Technology and Electrical Engineering, The University of Queensland, St Lucia, QLD 4072, AustraliaDepartment of Electronics and Communication Engineering, Kathir College of Engineering, Coimbatore 641062, Tamilnadu, IndiaDepartment of Electrical and Computer Engineering, Boise State University, Boise, ID 83725, USAThe increased need for renewable energy systems to generate power, store energy, and connect energy storage devices with applications has become a major challenge. Energy storage using batteries is most appropriate for energy sources like solar, wind, etc. A non-isolated three-port DC–DC-converter energy conversion unit is implemented feeding the brushless DCmotor drive. In this paper, a non-isolated three-port converter is designed and simulated for battery energy storage, interfaced with an output drive. Based on the requirements, the power extracted from the solar panel during the daytime is used to charge the batteries through the three-port converter. The proposed three-port converter is analyzed in terms of operating principles and power flow. An FPGA-based NI LabView PXI with SbRio interface is used to develop the suggested approach’s control hardware, and prototype model results are obtained to test the proposed three-port converter control system’s effectiveness and practicality. The overall efficiency of the converter’s output improves as a result. The success rate is 96.5 percent while charging an ESS, 98.1 percent when discharging an ESS, and 95.7 percent overall.https://www.mdpi.com/1996-1073/16/2/624BLDC motorDC–DC converterfield programmable gate arrayMPP trackingsolar PV systemthree-portconverter (TPC)
spellingShingle Arun Kumar Udayakumar
Raghavendra Rajan Vijaya Raghavan
Mohamad Abou Houran
Rajvikram Madurai Elavarasan
Anushkannan Nedumaran Kalavathy
Eklas Hossain
Three-Port Bi-Directional DC–DC Converter with Solar PV System Fed BLDC Motor Drive Using FPGA
Energies
BLDC motor
DC–DC converter
field programmable gate array
MPP tracking
solar PV system
three-portconverter (TPC)
title Three-Port Bi-Directional DC–DC Converter with Solar PV System Fed BLDC Motor Drive Using FPGA
title_full Three-Port Bi-Directional DC–DC Converter with Solar PV System Fed BLDC Motor Drive Using FPGA
title_fullStr Three-Port Bi-Directional DC–DC Converter with Solar PV System Fed BLDC Motor Drive Using FPGA
title_full_unstemmed Three-Port Bi-Directional DC–DC Converter with Solar PV System Fed BLDC Motor Drive Using FPGA
title_short Three-Port Bi-Directional DC–DC Converter with Solar PV System Fed BLDC Motor Drive Using FPGA
title_sort three port bi directional dc dc converter with solar pv system fed bldc motor drive using fpga
topic BLDC motor
DC–DC converter
field programmable gate array
MPP tracking
solar PV system
three-portconverter (TPC)
url https://www.mdpi.com/1996-1073/16/2/624
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