Design and Experimental Validation of a Fully Soft-Switched High Step-Up DC–DC Converter with Reduced Input Current Ripple for Distributed Generation Systems Applications

This paper introduces a non-isolated high step-up DC–DC converter suitable for distributed generation system applications. The proposed topology uses the zero-voltage-transition (ZVT) technique to achieve soft-switching conditions over a wide range of output power levels, resulting in improved efficiency and reliability. Since the main switch turns on under ZVS conditions, the capacitive turn-on loss is eliminated, thereby reducing switching losses. In addition to the soft-switching capability, the converter provides a continuous input current, which reduces the input filter requirement and improves both power density and cost-effectiveness. Moreover, the converter design effectively increases the voltage gain by utilizing coupled-inductor, switched-capacitor, and voltage-multiplier techniques, allowing the proposed converter to be used in high-voltage applications. The proposed converter employs an independent input inductor and a four-winding coupled inductor implemented using two magnetic cores. Furthermore, the proposed converter features lower voltage stress across the switches, enabling the use of cost-effective, low-resistance MOSFETs, which further improve efficiency. Finally, a common ground structure, the absence of floating switches, and the elimination of the reverse-recovery problem in all diodes are additional valuable advantages of the proposed converter. Comprehensive analytical investigations, together with experimental evaluations conducted at a power level of 200 W, demonstrate that the proposed converter achieves enhanced performance characteristics and outperforms previously reported converter topologies.

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Publication Details

Journal
Energies
Published
2026-10-05
DOI
https://doi.org/10.3390/en19194696
Primary Topic
Advanced DC-DC Converters
Type
article
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article

Design and Experimental Validation of a Fully Soft-Switched High Step-Up DC–DC Converter with Reduced Input Current Ripple for Distributed Generation Systems Applications

Hamed Moradmand Jazi, Herminio Martínez García, Ching‐Jan Chen, Cheng-Sheng Lin
Energies
Advanced DC-DC Converters
article

Design and Experimental Validation of a Fully Soft-Switched High Step-Up DC–DC Converter with Reduced Input Current Ripple for Distributed Generation Systems Applications

Hamed Moradmand Jazi, Herminio Martínez García, Ching‐Jan Chen, Cheng-Sheng Lin
article en

Abstract

This paper introduces a non-isolated high step-up DC–DC converter suitable for distributed generation system applications. The proposed topology uses the zero-voltage-transition (ZVT) technique to achieve soft-switching conditions over a wide range of output power levels, resulting in improved efficiency and reliability. Since the main switch turns on under ZVS conditions, the capacitive turn-on loss is eliminated, thereby reducing switching losses. In addition to the soft-switching capability, the converter provides a continuous input current, which reduces the input filter requirement and improves both power density and cost-effectiveness. Moreover, the converter design effectively increases the voltage gain by utilizing coupled-inductor, switched-capacitor, and voltage-multiplier techniques, allowing the proposed converter to be used in high-voltage applications. The proposed converter employs an independent input inductor and a four-winding coupled inductor implemented using two magnetic cores. Furthermore, the proposed converter features lower voltage stress across the switches, enabling the use of cost-effective, low-resistance MOSFETs, which further improve efficiency. Finally, a common ground structure, the absence of floating switches, and the elimination of the reverse-recovery problem in all diodes are additional valuable advantages of the proposed converter. Comprehensive analytical investigations, together with experimental evaluations conducted at a power level of 200 W, demonstrate that the proposed converter achieves enhanced performance characteristics and outperforms previously reported converter topologies.

EnergiesVol. 19(19)
National Taiwan University (TW), Universitat Politècnica de Catalunya (ES)
Openalex Percentile: Top 22%
Advanced DC-DC Converters
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Design and Experimental Validation of a Fully Soft-Switched High Step-Up DC–DC Converter with Reduced Input Current Ripple for Distributed Generation Systems Applications — Hamed Moradmand Jazi, Herminio Martínez García, et al. · Energies (2026) | TGRS Research Map | TGRS