LAPSE:2023.3345
Published Article

LAPSE:2023.3345
A High-Efficiency QR Flyback DC−DC Converter with Reduced Switch Voltage Stress Realized by Applying a Self-Driven Active Snubber (SDAS)
February 22, 2023
Abstract
In this paper, a QR flyback converter using a self-driven active snubber (SDAS) was proposed to solve the problem of voltage surge in the switch of QR flyback converters. In the proposed converter, the SDAS consisting of a clamping capacitor and an active switch can be configured in parallel with the main switch or transformer to reduce the voltage surge in the switch. To confirm the steady-state characteristics of the QR flyback converter to which the proposed SDAS is applied, equivalent circuits for each state were constructed, and the equations and characteristics for each state were determined. A 60 W class small AC−DC adapter was constructed to confirm the effectiveness of the proposed converter and the control circuit method, and the experimental results were analyzed. The size of the experimental AC−DC adapter was 74×29×23 mm, and it had a high power density of 20 W/in3 or more. The experimental circuit was limited to the high power conversion efficiency of up to 91.56%, and the maximum voltage surge in the switch was approximately 450 V. One of the reasons for such high efficiency is the SDAS circuit, which sufficiently reduces the voltage surge of the QR flyback switch, compared with the RCD clamp circuit, and does not consume power in principle.
In this paper, a QR flyback converter using a self-driven active snubber (SDAS) was proposed to solve the problem of voltage surge in the switch of QR flyback converters. In the proposed converter, the SDAS consisting of a clamping capacitor and an active switch can be configured in parallel with the main switch or transformer to reduce the voltage surge in the switch. To confirm the steady-state characteristics of the QR flyback converter to which the proposed SDAS is applied, equivalent circuits for each state were constructed, and the equations and characteristics for each state were determined. A 60 W class small AC−DC adapter was constructed to confirm the effectiveness of the proposed converter and the control circuit method, and the experimental results were analyzed. The size of the experimental AC−DC adapter was 74×29×23 mm, and it had a high power density of 20 W/in3 or more. The experimental circuit was limited to the high power conversion efficiency of up to 91.56%, and the maximum voltage surge in the switch was approximately 450 V. One of the reasons for such high efficiency is the SDAS circuit, which sufficiently reduces the voltage surge of the QR flyback switch, compared with the RCD clamp circuit, and does not consume power in principle.
Record ID
Keywords
active clamping switch, active snubber, quasi-resonant flyback converter, RCD snubber, self-driven active snubber, synchronous rectifier, valley switching
Subject
Suggested Citation
Yoo JS, Baek JO, Ahn TY. A High-Efficiency QR Flyback DC−DC Converter with Reduced Switch Voltage Stress Realized by Applying a Self-Driven Active Snubber (SDAS). (2023). LAPSE:2023.3345
Author Affiliations
Yoo JS: Department of Electronics Engineering, Cheongju University, Cheongju 28503, Republic of Korea
Baek JO: R&D Division, Zinnos Inc., Busan 49108, Republic of Korea [ORCID]
Ahn TY: Department of Electrical & Control Engineering, Cheongju University, Cheongju 28503, Republic of Korea
Baek JO: R&D Division, Zinnos Inc., Busan 49108, Republic of Korea [ORCID]
Ahn TY: Department of Electrical & Control Engineering, Cheongju University, Cheongju 28503, Republic of Korea
Journal Name
Energies
Volume
16
Issue
3
First Page
1068
Year
2023
Publication Date
2023-01-18
ISSN
1996-1073
Version Comments
Original Submission
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PII: en16031068, Publication Type: Journal Article
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LAPSE:2023.3345
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https://doi.org/10.3390/en16031068
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Feb 22, 2023
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