A Single DC Source Five-Level Switched Capacitor Inverter for Grid-Integrated Solar Photovoltaic System: Modeling and Performance Investigation

Boost converters and multilevel inverters (MLI) are frequently included in low-voltage solar photovoltaic (PV) systems for grid integration. However, the use of an inductor-based boost converter makes the system bulky and increases control complexity. Therefore, the switched-capacitor-based MLI emer...

Full description

Bibliographic Details
Published in:Sustainability (Switzerland)
Main Author: Islam M.T.; Alam M.A.; Lipu M.S.H.; Hasan K.; Meraj S.T.; Masrur H.; Rahman M.F.
Format: Article
Language:English
Published: MDPI 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85160774362&doi=10.3390%2fsu15108405&partnerID=40&md5=cee9fcc5247d0c9887d48a8340f578c0
id 2-s2.0-85160774362
spelling 2-s2.0-85160774362
Islam M.T.; Alam M.A.; Lipu M.S.H.; Hasan K.; Meraj S.T.; Masrur H.; Rahman M.F.
A Single DC Source Five-Level Switched Capacitor Inverter for Grid-Integrated Solar Photovoltaic System: Modeling and Performance Investigation
2023
Sustainability (Switzerland)
15
10
10.3390/su15108405
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85160774362&doi=10.3390%2fsu15108405&partnerID=40&md5=cee9fcc5247d0c9887d48a8340f578c0
Boost converters and multilevel inverters (MLI) are frequently included in low-voltage solar photovoltaic (PV) systems for grid integration. However, the use of an inductor-based boost converter makes the system bulky and increases control complexity. Therefore, the switched-capacitor-based MLI emerges as an efficient DC/AC voltage convertor with boosting capability. To make classical topologies more efficient and cost-effective for sustainable power generation, newer topologies and control techniques are continually evolving. This paper proposes a reduced-component-count five-level inverter design for generating stable AC voltages for sustainable grid-integrated solar photovoltaic applications. The proposed topology uses seven switching devices of lower total standing voltage (TSV), three diodes, and two DC-link capacitors to generate five-level outputs. By charging and discharging cycles, the DC capacitor voltages are automatically balanced. Thus, no additional sensors or control circuitry is required. It has inherent voltage-boosting capability without any input boost converter. A low-frequency-based half-height (HH) modulation technique is employed in the standalone system for better voltage quality. Extensive simulations are performed in a MATLAB/Simulink environment to estimate the performance of the proposed topology, and 17.58% THDs are obtained in the phase voltages. Using a small inductor in series or an inductive load, the current THD reduces to 8.23%. Better dynamic performance is also observed with different loading conditions. A miniature five-level single-phase laboratory prototype is developed to verify the accuracy of the simulation results and the viability of the proposed topology. © 2023 by the authors.
MDPI
20711050
English
Article
All Open Access; Gold Open Access
author Islam M.T.; Alam M.A.; Lipu M.S.H.; Hasan K.; Meraj S.T.; Masrur H.; Rahman M.F.
spellingShingle Islam M.T.; Alam M.A.; Lipu M.S.H.; Hasan K.; Meraj S.T.; Masrur H.; Rahman M.F.
A Single DC Source Five-Level Switched Capacitor Inverter for Grid-Integrated Solar Photovoltaic System: Modeling and Performance Investigation
author_facet Islam M.T.; Alam M.A.; Lipu M.S.H.; Hasan K.; Meraj S.T.; Masrur H.; Rahman M.F.
author_sort Islam M.T.; Alam M.A.; Lipu M.S.H.; Hasan K.; Meraj S.T.; Masrur H.; Rahman M.F.
title A Single DC Source Five-Level Switched Capacitor Inverter for Grid-Integrated Solar Photovoltaic System: Modeling and Performance Investigation
title_short A Single DC Source Five-Level Switched Capacitor Inverter for Grid-Integrated Solar Photovoltaic System: Modeling and Performance Investigation
title_full A Single DC Source Five-Level Switched Capacitor Inverter for Grid-Integrated Solar Photovoltaic System: Modeling and Performance Investigation
title_fullStr A Single DC Source Five-Level Switched Capacitor Inverter for Grid-Integrated Solar Photovoltaic System: Modeling and Performance Investigation
title_full_unstemmed A Single DC Source Five-Level Switched Capacitor Inverter for Grid-Integrated Solar Photovoltaic System: Modeling and Performance Investigation
title_sort A Single DC Source Five-Level Switched Capacitor Inverter for Grid-Integrated Solar Photovoltaic System: Modeling and Performance Investigation
publishDate 2023
container_title Sustainability (Switzerland)
container_volume 15
container_issue 10
doi_str_mv 10.3390/su15108405
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85160774362&doi=10.3390%2fsu15108405&partnerID=40&md5=cee9fcc5247d0c9887d48a8340f578c0
description Boost converters and multilevel inverters (MLI) are frequently included in low-voltage solar photovoltaic (PV) systems for grid integration. However, the use of an inductor-based boost converter makes the system bulky and increases control complexity. Therefore, the switched-capacitor-based MLI emerges as an efficient DC/AC voltage convertor with boosting capability. To make classical topologies more efficient and cost-effective for sustainable power generation, newer topologies and control techniques are continually evolving. This paper proposes a reduced-component-count five-level inverter design for generating stable AC voltages for sustainable grid-integrated solar photovoltaic applications. The proposed topology uses seven switching devices of lower total standing voltage (TSV), three diodes, and two DC-link capacitors to generate five-level outputs. By charging and discharging cycles, the DC capacitor voltages are automatically balanced. Thus, no additional sensors or control circuitry is required. It has inherent voltage-boosting capability without any input boost converter. A low-frequency-based half-height (HH) modulation technique is employed in the standalone system for better voltage quality. Extensive simulations are performed in a MATLAB/Simulink environment to estimate the performance of the proposed topology, and 17.58% THDs are obtained in the phase voltages. Using a small inductor in series or an inductive load, the current THD reduces to 8.23%. Better dynamic performance is also observed with different loading conditions. A miniature five-level single-phase laboratory prototype is developed to verify the accuracy of the simulation results and the viability of the proposed topology. © 2023 by the authors.
publisher MDPI
issn 20711050
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
_version_ 1809678017950121984