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March 6, 2026IET conference proceedings.2 citations

Modelling and experimental investigation of the power conversion system for solid oxide water electrolysis

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AFArman FathollahiCDChristian DannesboeBAB. Andresen

Key Points

  • The research aims to model and investigate the power conversion system for solid oxide water electrolysis to enhance hydrogen production efficiency.
  • Detailed modeling of the power conversion system based on real-time measurements.
  • Experimental analysis conducted on a full-scale setup at Aarhus University.
  • Incorporation of harmonic analysis for interfacing components including a comprehensive power quality analysis.
  • Development of a validated high-fidelity digital model of the power conversion system.
  • Model accuracy confirmed through comparison with performance measurements from the operational platform.
  • Identification of system capabilities and limitations under actual operating conditions.

Abstract

Hydrogen production via water electrolysis is a promising pathway for decarbonizing renewable based energy systems by enabling large-scale energy storage and a flexible power supply through fuel cells. Among the available electrolysis technologies solid oxide electrolysis stands out due to its higher efficiency potential compared to conventional alkaline and proton exchange membrane (PEM) methods. A critical component of such systems is the AC/DC power converter that significantly affects the overall function of the electrolysis. This paper presents a detailed modelling and experimental analysis of the power conversion system used in a solid oxide electrolysis-based Power-to-Hydrogen (PtH) platform. The study is conducted on a full-scale experimental setup at Aarhus University's research laboratory in Foulum and was carried out as part of the REACT-EU project in collaboration with Topsoe as the industrial partner. The modelling approach is grounded in real-time measurements, incorporating harmonic analysis of interfacing components that may influence the PtH system. A key contribution of this work is the development of a high-fidelity digital model or digital shadow of the power conversion system which is validated through experimental data. The model's accuracy is confirmed by direct comparison with different performance measurements from the operational platform. In addition, the system capabilities and limitations under actual operating circumstances are examined through thorough power quality analysis. The experimental results provide support for the suggested model and offer useful information for enhancing the effectiveness and grid integration of PtH systems.

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Cite This Study

Fathollahi et al. (2026) studied this question.

synapsesocial.com/papers/69aa6f3c531e4c4a9ff593echttps://doi.org/10.1049/icp.2025.4334
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