Author
Listed:
- Andrej Blaško
(Department of Power Electrical Systems, Faculty of Electrical Engineering and Information Technology, University of Žilina, Univerzitná 8215/1, 010 26 Žilina, Slovakia)
- Rastislav Havrila
(INELTEH, s.r.o., Bytčická 2, 010 08 Žilina, Slovakia)
- Matej Pacha
(INELTEH, s.r.o., Bytčická 2, 010 08 Žilina, Slovakia)
- Pavol Makys
(Department of Power Electrical Systems, Faculty of Electrical Engineering and Information Technology, University of Žilina, Univerzitná 8215/1, 010 26 Žilina, Slovakia)
Abstract
This paper presents the experimental validation of a high-frequency full-SiC railway auxiliary converter power module intended as a building block for modular multi-system railway auxiliary converters. The proposed architecture employs a unified SiC-based power conversion platform that integrates an active front-end single-phase PWM rectifier with a galvanically isolated high-frequency DC/DC stage operating at 90 kHz under zero-current switching (ZCS) conditions. Although the converter is designed for both AC and DC traction systems, this study focuses primarily on its operation under single-phase AC railway supply conditions, which are representative of practical applications. A hybrid bipolar–unipolar modulation strategy is used to reduce the RMS voltage stress on the input inductor while preserving controllability of the input current near the voltage zero-crossing regions. Special attention is given to operation under distorted railway supply voltages, which are common in real traction systems. The control structure combines a proportional–resonant (PR) current controller, harmonic compensators, feedforward voltage compensation, and MSOGI-based synchronization to ensure stable synchronization and low-input current distortion even under non-ideal conditions. Experimental validation was performed on a 10 kW laboratory prototype. The results demonstrate a peak efficiency of 98.4% and near-unity input power factor. Under heavily distorted supply conditions THD v > 30 % , the input current distortion remained below THD i = 2.3 % . Harmonic and STFT analyses confirmed the robustness of the proposed synchronization and current control structure. The obtained results indicate that the proposed high-frequency full-SiC converter topology is a promising solution for future modular railway auxiliary converters, offering high efficiency, reduced passive component volume, and high power density. Full-scale high-voltage validation under both AC and DC traction systems remains the subject of further work.
Suggested Citation
Andrej Blaško & Rastislav Havrila & Matej Pacha & Pavol Makys, 2026.
"Experimental Validation of a High-Frequency Full-SiC Auxiliary Converter for AC Railway Supply Systems,"
Energies, MDPI, vol. 19(16), pages 1-17, August.
Handle:
RePEc:gam:jeners:v:19:y:2026:i:16:p:3737-:d:2011675
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