Uninterruptible Power Supply Topology Based on Single-Phase Matrix Converter with Active Power Filter Functionality

This study introduces a novel uninterruptible power supply (UPS) configuration that integrates active power filter (APF) capabilities within a single-phase matrix converter (SPMC) framework. Power disruptions, particularly affecting critical loads, can lead to substantial economic damages. Historica...

Full description

Bibliographic Details
Published in:ENERGIES
Main Authors: Mohamad Rawi, Muhammad Shawwal; Baharom, Rahimi; Mohd Radzi, Mohd Amran
Format: Article
Language:English
Published: MDPI 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001277451400001
author Mohamad Rawi
Muhammad Shawwal; Baharom
Rahimi; Mohd Radzi
Mohd Amran
spellingShingle Mohamad Rawi
Muhammad Shawwal; Baharom
Rahimi; Mohd Radzi
Mohd Amran
Uninterruptible Power Supply Topology Based on Single-Phase Matrix Converter with Active Power Filter Functionality
Energy & Fuels
author_facet Mohamad Rawi
Muhammad Shawwal; Baharom
Rahimi; Mohd Radzi
Mohd Amran
author_sort Mohamad Rawi
spelling Mohamad Rawi, Muhammad Shawwal; Baharom, Rahimi; Mohd Radzi, Mohd Amran
Uninterruptible Power Supply Topology Based on Single-Phase Matrix Converter with Active Power Filter Functionality
ENERGIES
English
Article
This study introduces a novel uninterruptible power supply (UPS) configuration that integrates active power filter (APF) capabilities within a single-phase matrix converter (SPMC) framework. Power disruptions, particularly affecting critical loads, can lead to substantial economic damages. Historically, conventional UPS systems utilized dual separate converters to function as a rectifier and an inverter, without incorporating any power factor correction (PFC) mechanisms. Such configurations suffered from diminished power density, compromised reliability, and spatial limitations. To address these issues, this research proposes an enhanced UPS design that incorporates APF features into the SPMC. The focus of this investigation is on the efficiency of alternating current (AC) to direct current (DC) conversion and the reverse process utilizing this advanced UPS model. The SPMC is selected to supplant the rectifier and inverter units traditionally employed in UPS architectures. A novel integrated switching strategy is formulated to facilitate the operation of the UPS in either rectifier (charging) or inverter (discharging) modes, contingent upon the operational state. The performance and efficacy of the devised circuit design and switching technique are substantiated through simulations conducted in MATLAB/Simulink 2019 and empirical evaluations using a test rig. The findings demonstrate that the voltage generated is sinusoidal and synchronized with the supply current, thereby minimizing the total harmonic distortion (THD) and enhancing both the power factor and the transition efficiency of the UPS system between its charging and discharging states.
MDPI

1996-1073
2024
17
14
10.3390/en17143441
Energy & Fuels
gold
WOS:001277451400001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001277451400001
title Uninterruptible Power Supply Topology Based on Single-Phase Matrix Converter with Active Power Filter Functionality
title_short Uninterruptible Power Supply Topology Based on Single-Phase Matrix Converter with Active Power Filter Functionality
title_full Uninterruptible Power Supply Topology Based on Single-Phase Matrix Converter with Active Power Filter Functionality
title_fullStr Uninterruptible Power Supply Topology Based on Single-Phase Matrix Converter with Active Power Filter Functionality
title_full_unstemmed Uninterruptible Power Supply Topology Based on Single-Phase Matrix Converter with Active Power Filter Functionality
title_sort Uninterruptible Power Supply Topology Based on Single-Phase Matrix Converter with Active Power Filter Functionality
container_title ENERGIES
language English
format Article
description This study introduces a novel uninterruptible power supply (UPS) configuration that integrates active power filter (APF) capabilities within a single-phase matrix converter (SPMC) framework. Power disruptions, particularly affecting critical loads, can lead to substantial economic damages. Historically, conventional UPS systems utilized dual separate converters to function as a rectifier and an inverter, without incorporating any power factor correction (PFC) mechanisms. Such configurations suffered from diminished power density, compromised reliability, and spatial limitations. To address these issues, this research proposes an enhanced UPS design that incorporates APF features into the SPMC. The focus of this investigation is on the efficiency of alternating current (AC) to direct current (DC) conversion and the reverse process utilizing this advanced UPS model. The SPMC is selected to supplant the rectifier and inverter units traditionally employed in UPS architectures. A novel integrated switching strategy is formulated to facilitate the operation of the UPS in either rectifier (charging) or inverter (discharging) modes, contingent upon the operational state. The performance and efficacy of the devised circuit design and switching technique are substantiated through simulations conducted in MATLAB/Simulink 2019 and empirical evaluations using a test rig. The findings demonstrate that the voltage generated is sinusoidal and synchronized with the supply current, thereby minimizing the total harmonic distortion (THD) and enhancing both the power factor and the transition efficiency of the UPS system between its charging and discharging states.
publisher MDPI
issn
1996-1073
publishDate 2024
container_volume 17
container_issue 14
doi_str_mv 10.3390/en17143441
topic Energy & Fuels
topic_facet Energy & Fuels
accesstype gold
id WOS:001277451400001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001277451400001
record_format wos
collection Web of Science (WoS)
_version_ 1809679296742031360