This article proposes a high‐gain quadratic DC–DC converter derived from the improved Sepic structure. By integrating a voltage multiplier cell, a coupled inductor, and a new quadratic voltage‐boosting stage, the design provides ultra‐high and adaptable voltage conversion ratios, resulting in significantly enhanced gain capability. Despite the substantial increase in voltage gain, the design maintains low voltage stress on the components. Passive clamping circuits are incorporated for both switching transistors, which effectively suppress voltage spikes by recycling the energy stored in the leakage inductance. Furthermore, the inclusion of a single input inductor ensures a continuous input current. Additional advantages of the proposed topology encompass reduced voltage stress across the semiconductor devices and a nonisolated, common‐ground configuration. These features enhance its suitability for renewable energy integration. A comprehensive examination is provided, covering detailed steady‐state analysis, a parameter design guideline, and a loss analysis. The effectiveness of the converter is validated through a 200 W experimental prototype, delivering an output voltage of 400 V. This prototype demonstrates a peak full‐load efficiency of 95.41%, thereby confirming the topology's superior performance in energy conversion systems.
Yuzhen Xu, Weixuan Wu, Yin Chen et al.· International journal of cir...· 0 citations
A novel nonisolated high‐gain DC‐DC converter is proposed in this article. The converter integrates a three‐winding coupled inductor (TWCI) and a voltage modulation circuit (VMC), thereby significantly enhancing the voltage boosting capability. Its boost structure, made of a coupled inductor and a VMC, achieves high‐voltage gain with fewer turns in the inductor and an appropriate duty cycle. Furthermore, the three‐winding coupled inductor serves to enhance the versatility of voltage gain regulation. The converter's input is connected to an inductor, reducing input current ripple. Low‐voltage stress on switching devices and clamping diodes makes it easy to select low‐loss, fast recovery diodes, improving converter efficiency. There are steady‐state analysis, parameter design, and loss analysis of the proposed converter presented in this article, along with a comparison to existing high‐gain converters. Consequently, an experimental prototype was constructed in accordance with the design principles, and the experimental results substantiated the efficacy of the proposed converter.
Yuzhen Xu, Yiming Li, Haibin Li et al.· International journal of cir...· 0 citations
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