Medium-Frequency Transformer for SST Applications
Design and Optimization
Reza Mirzadarani (TU Delft - High Voltage Technology Group)
Leonardo Bolzonella (TU Delft - High Voltage Technology Group)
Zhengzhao Li (TU Delft - DC systems, Energy conversion & Storage)
Zian Qin (TU Delft - DC systems, Energy conversion & Storage)
Peter Vaessen (TU Delft - High Voltage Technology Group)
Pavol Bauer (TU Delft - DC systems, Energy conversion & Storage)
Mohamad Ghaffarian Niasar (TU Delft - High Voltage Technology Group)
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Abstract
This work presents a down-scaled validation of a medium-voltage, medium-frequency transformer (MFT) concept designed for high-current operation on the secondary side using multiple parallel paths. The design is based on a modular winding approach, which simplifies the construction process and conductor placement on the bobbin. A systematic design and optimization procedure is developed, combining analytical calculations and finite-element simulations to explore the mass-efficiency trade-off and to select a candidate design that meets specified leakage inductance and loss targets. The developed prototype serves as a proof of concept, demonstrating that the electrical, magnetic, and insulation requirements of the full-scale MFT can be effectively verified at reduced power levels. The fabricated prototype is tested under short-circuit and partial discharge conditions. The impedance measurements confirmed the expected resonance behavior, and the partial discharge test results verified sufficient insulation performance under high-voltage stress. The results provide experimental evidence for the scalability and feasibility of the proposed transformer design and offer guidelines for the use of 3D-printed supports, grain-oriented electrical steel cores, and windings in medium-voltage, medium-frequency transformer systems for hydrogen production applications.