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Article

A Non-Isolated High Gain Step-Up DC/DC Converter Based on Coupled Inductor with Reduced Voltage Stresses

by
Yuqing Yang
1,
Song Xu
1,*,
Wei Jiang
2 and
Seiji Hashimoto
3
1
School of Automation, Jiangsu University of Science and Technology, Zhenjiang 212100, China
2
School of Intelligent Manufacturing, Yangzhou Polytechnic Institute, Yangzhou 215126, China
3
Department of Electronics and Informatics, Gunma University, Kiryu 376-8515, Japan
*
Author to whom correspondence should be addressed.
J. Low Power Electron. Appl. 2025, 15(3), 48; https://doi.org/10.3390/jlpea15030048
Submission received: 12 July 2025 / Revised: 13 August 2025 / Accepted: 19 August 2025 / Published: 22 August 2025
(This article belongs to the Topic Advanced Integrated Circuit Design and Application)

Abstract

Hybrid electric vehicles (HEVs) have gained significant attention for their superior energy efficiency and are becoming a predominant mode of urban transportation. The DC/DC converter plays a critical role in HEV energy management systems, especially in matching the voltage levels between the battery and DC bus. This paper proposes a novel high-gain DC/DC converter with a wide input voltage range based on coupled inductors. The innovation lies in the integration of a resonant cavity and the simultaneous realization of zero-voltage switching (ZVS) and zero-current switching (ZCS), effectively reducing both voltage/current stresses on the power switches and switching losses. Compared with conventional topologies, the proposed design achieves higher voltage gain without extreme duty cycles, improved conversion efficiency, and enhanced reliability. Detailed operating principles are analyzed, and design conditions for voltage stress reduction, gain extension, and soft switching are derived. The simulation model has been conducted in a PSIM environment, and a 300 W experimental prototype, implemented using a dsPIC33FJ64GS606 digital controller, has been established and demonstrates 93% peak efficiency at a 10 times voltage gain. The performance and practical feasibility of the proposed topology have been evaluated by both simulation and experiments.
Keywords: coupled inductance; DC-DC; high-gain; soft-switching; HEV coupled inductance; DC-DC; high-gain; soft-switching; HEV

Share and Cite

MDPI and ACS Style

Yang, Y.; Xu, S.; Jiang, W.; Hashimoto, S. A Non-Isolated High Gain Step-Up DC/DC Converter Based on Coupled Inductor with Reduced Voltage Stresses. J. Low Power Electron. Appl. 2025, 15, 48. https://doi.org/10.3390/jlpea15030048

AMA Style

Yang Y, Xu S, Jiang W, Hashimoto S. A Non-Isolated High Gain Step-Up DC/DC Converter Based on Coupled Inductor with Reduced Voltage Stresses. Journal of Low Power Electronics and Applications. 2025; 15(3):48. https://doi.org/10.3390/jlpea15030048

Chicago/Turabian Style

Yang, Yuqing, Song Xu, Wei Jiang, and Seiji Hashimoto. 2025. "A Non-Isolated High Gain Step-Up DC/DC Converter Based on Coupled Inductor with Reduced Voltage Stresses" Journal of Low Power Electronics and Applications 15, no. 3: 48. https://doi.org/10.3390/jlpea15030048

APA Style

Yang, Y., Xu, S., Jiang, W., & Hashimoto, S. (2025). A Non-Isolated High Gain Step-Up DC/DC Converter Based on Coupled Inductor with Reduced Voltage Stresses. Journal of Low Power Electronics and Applications, 15(3), 48. https://doi.org/10.3390/jlpea15030048

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