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Xuan Khanh Ho

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Open access Jul 2026

A high step-up DC–DC converter with voltage multiplier cell for renewable energy systems

This paper proposes a novel high step-up DC–DC converter topology featuring two synchronously controlled power switches driven by identical gate signals, thereby simplifying the control circuit. The proposed converter (PC) employs an input inductor to ensure continuous input current and a three-winding coupled inductor to achieve ultra-high voltage conversion gain. In addition, a voltage-multiplier cell is incorporated to further enhance the output voltage gain (VG). A passive-clamp circuit is utilized to recycle leakage energy, reduce voltage spikes, and improve overall efficiency. The converter is analyzed under both continuous conduction mode (CCM) and discontinuous conduction mode (DCM), including the derivation of VG characteristics and CCM/DCM boundary conditions. A comprehensive theoretical investigation is presented, covering steady-state operation, VG, voltage and current stresses of semiconductor devices, component design considerations, power-loss analysis, small-signal modeling, control design, and dynamic response characteristics. Compared with recently reported high step-up converters, the proposed topology achieves an improved trade-off among VG, switch stress, magnetic complexity, and component count through the coordinated integration of the coupled-inductor structure, voltage-multiplier cell, and passive-clamp circuit. To validate the theoretical analysis, a 200 W laboratory prototype with a 24 V input and 400 V output was designed and implemented in both simulation and hardware. Experimental results demonstrate a peak efficiency of 96.7% at 40% load and 95.7% at full load, confirming high efficiency over a wide operating range. These results verify the effectiveness and suitability of the PC for renewable-energy and high step-up power-conversion applications.

Thai Anh Au Tran, Kim-Anh Nguyen, Xuan Khanh Ho et al. · 0 citations
Conference Open access 2026

Design and Analysis of a Single-Switch Energy-Stacking DC–DC Converter for Renewable Energy Integration

A DC–DC power conversion topology based on a single controlled switch and high voltage elevation is developed, employing magnetic energy transfer and an integrated passive clamp to mitigate the voltage stress on the MOSFET. Operating at a duty cycle of 41.7%, the converter achieves an output–input voltage ratio of 16.67, stepping up from 24 V to 400 V. The proposed topology overcomes key limitations of conventional converters, including high losses at large duty cycles and excessive component counts in cascaded architectures. Comprehensive steady-state operation, voltage and current stress evaluation, power loss assessment, and passive component design are analytically investigated. Comparative evaluation with existing high step-up topologies and simulation validation are also presented. Simulation results under a 300 W output power condition demonstrate a peak efficiency of 95.44% and low output voltage ripple. The outcomes support the analytical framework and indicate the suitability of the proposed converter for real-world applications requiring stable high-voltage DC conversion from low-voltage sources.

Thai Anh Au Tran, Xuan Khanh Ho, Hoai Khanh Ly Le · 0 citations