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High-Gain Coupled-Inductor Boost Converters Using Voltage-Doubling and Continuous Input Current Design
by
Ji, Yuliang
, Ji, Shuai
, Liu, Yiqi
in
Circuit components
/ Comparative analysis
/ Diodes
/ Electric current converters
/ Electric vehicles
/ High gain
/ Inductors
/ Management science
/ Mathematical analysis
/ Numerical analysis
/ Supplies
/ Topology
/ Voltage converters (DC to DC)
/ Voltage gain
/ Winding
2025
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High-Gain Coupled-Inductor Boost Converters Using Voltage-Doubling and Continuous Input Current Design
by
Ji, Yuliang
, Ji, Shuai
, Liu, Yiqi
in
Circuit components
/ Comparative analysis
/ Diodes
/ Electric current converters
/ Electric vehicles
/ High gain
/ Inductors
/ Management science
/ Mathematical analysis
/ Numerical analysis
/ Supplies
/ Topology
/ Voltage converters (DC to DC)
/ Voltage gain
/ Winding
2025
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Do you wish to request the book?
High-Gain Coupled-Inductor Boost Converters Using Voltage-Doubling and Continuous Input Current Design
by
Ji, Yuliang
, Ji, Shuai
, Liu, Yiqi
in
Circuit components
/ Comparative analysis
/ Diodes
/ Electric current converters
/ Electric vehicles
/ High gain
/ Inductors
/ Management science
/ Mathematical analysis
/ Numerical analysis
/ Supplies
/ Topology
/ Voltage converters (DC to DC)
/ Voltage gain
/ Winding
2025
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High-Gain Coupled-Inductor Boost Converters Using Voltage-Doubling and Continuous Input Current Design
Journal Article
High-Gain Coupled-Inductor Boost Converters Using Voltage-Doubling and Continuous Input Current Design
2025
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Overview
This paper proposes a family of high-efficiency DC-DC boost converters employing voltage-doubling coupled-inductor technology with a low component count. By varying the homonymous winding connections of the coupled inductor, three topologies are developed: parallel (PWCDVD-CLBC), series (SWCDVD-CLBC), and flipped-parallel (FPWCDVD-CLBC). These converters achieve high-voltage gain, continuous input current, and low-voltage stress across components. The PWCDVD-CLBC and FPWCDVD-CLBC configurations exhibit voltage gains proportional to the turn ratio, while the SWCDVD-CLBC shows an inverse relation, enabling reduced turn ratios. Detailed operational principles, mathematical analysis, and performance advantages are presented. A comparative evaluation demonstrates a higher voltage gain, realizes continuous input current, and has lower voltage stresses. The experimental results validate the theoretical analysis and confirm the feasibility and efficiency of the proposed designs.
Publisher
MDPI AG
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