Practical evaluation of an interleaved boost AC-DC converter with power factor correction for a solid-state transformer
DOI:
https://doi.org/10.26686/ases.v2.11233Keywords:
AC-DC converter, Interleaved boost, Power factor correction, Solid-state transformer, Total harmonic distortionAbstract
Solid-state transformers (SSTs) are key enabling technologies for smart grids, offering enhanced controllability, fault isolation, and active power quality improvement over conventional low-frequency transformers. Their front-end AC-DC converter must rectify grid voltage while maintaining a high power factor (PF) and low total harmonic distortion (THD). This paper presents the design, simulation, and hardware validation of a two-phase interleaved boost AC-DC PFC converter for a laboratory-scale SST, operating from 24 V AC to a regulated 48 V DC bus at approximately 100 W. A digital average-current-mode controller with interleaved 180° carriers, implemented on a TI C2000 microcontroller, regulates the DC link and shapes the input current. MATLAB/Simulink results predict approximately 89% efficiency and a well-regulated DC link, while the simulated THD and true power factor fall short of the <5% and >0.95 targets, attributed primarily to input diode-bridge conduction loss and zero-crossing distortion. A DC-bench prototype campaign confirms clean 50 kHz gate drive, correct 180° interleaving with the characteristic frequency-doubled output ripple, accurate sensing, boost operation, and a measured efficiency consistent with simulation. Because the power-factor control is an AC feature, true power factor, THD, and closed-loop regulation are reported from simulation, with full AC characterisation retained as future work. Bridgeless rectification and wide-bandgap devices are recommended to close the performance gap.Downloads
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Published
2026-09-02
How to Cite
Malaibe, C., & Burmester, D. (2026). Practical evaluation of an interleaved boost AC-DC converter with power factor correction for a solid-state transformer. Archives of Sustainable Energy Systems, 2. https://doi.org/10.26686/ases.v2.11233
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Copyright (c) 2026 Charles Malaibe, Daniel Burmester

This work is licensed under a Creative Commons Attribution 4.0 International License.
The articles in the journal are published under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0), which permits use, sharing, adaptation, distribution, and reproduction in any medium or format, provided the original author(s) and source are properly cited.

