Evaluation and Control of a Three-Port Universal Input Integrated Converter With Power Factor Correction and Active Power Decoupling

Universal-input power electronic converters, capable of operation with either (or both) ac or dc input sources, find application in hybrid dc-ac microgrids, critical uninterruptible power systems, and islanded loads. Such systems are also useful for integrating local dc-based back-up source, which e...

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Published inIEEE journal of emerging and selected topics in industrial electronics (Print) Vol. 5; no. 2; pp. 414 - 424
Main Authors Chakraborty, Ritam, Biswas, Kausik, Ray, Olive
Format Journal Article
LanguageEnglish
Published New York IEEE 01.04.2024
The Institute of Electrical and Electronics Engineers, Inc. (IEEE)
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ISSN2687-9735
2687-9743
DOI10.1109/JESTIE.2023.3317795

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Abstract Universal-input power electronic converters, capable of operation with either (or both) ac or dc input sources, find application in hybrid dc-ac microgrids, critical uninterruptible power systems, and islanded loads. Such systems are also useful for integrating local dc-based back-up source, which enhances the reliability of weak and unreliable grids. This article evaluates control schemes for universal-input integrated dual-dc boost converter topology (Chakraborty and Ray, 2022), which is capable of interfacing ac and dc inputs into dc loads. This work proposes a novel power factor correction (PFC) strategy for the ac input port and active power decoupling at the output port of the topology. Compared with conventional PFC control strategies, the proposed control method provides a user programmable power factor control. The presence of multiple ports within the topology contributes toward active power decoupling without the need for dedicated unit for the same. The theory of this control design, its implementation, and its validation has been presented using a 220-W laboratory prototype.
AbstractList Universal-input power electronic converters, capable of operation with either (or both) ac or dc input sources, find application in hybrid dc-ac microgrids, critical uninterruptible power systems, and islanded loads. Such systems are also useful for integrating local dc-based back-up source, which enhances the reliability of weak and unreliable grids. This article evaluates control schemes for universal-input integrated dual-dc boost converter topology (Chakraborty and Ray, 2022), which is capable of interfacing ac and dc inputs into dc loads. This work proposes a novel power factor correction (PFC) strategy for the ac input port and active power decoupling at the output port of the topology. Compared with conventional PFC control strategies, the proposed control method provides a user programmable power factor control. The presence of multiple ports within the topology contributes toward active power decoupling without the need for dedicated unit for the same. The theory of this control design, its implementation, and its validation has been presented using a 220-W laboratory prototype.
Author Biswas, Kausik
Ray, Olive
Chakraborty, Ritam
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Snippet Universal-input power electronic converters, capable of operation with either (or both) ac or dc input sources, find application in hybrid dc-ac microgrids,...
Universal-input power electronic converters, capable of operation with either (or both) ac or dc input sources, find application in hybrid dc–ac microgrids,...
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SubjectTerms Ac–dc conversion
Batteries
Control methods
Control systems
Decoupling
Distributed generation
Electrical loads
Inductors
multiport conversion
power decoupling
Power factor
power factor correction
Reliability
Sensors
Switches
Topology
Title Evaluation and Control of a Three-Port Universal Input Integrated Converter With Power Factor Correction and Active Power Decoupling
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