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April 18, 2026Energy Conversion and Management2 citationsOpen Access

PEM Water Electrolyzer Robust Control Under Renewable Energy Source Intermittency

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MZMeziane Ait ZianeMZMichel ZasadzinskiHRHugues Rafaralahy

Key Points

  • This research aims to develop robust control strategies for a proton exchange membrane water electrolyzer to manage hydrogen production effectively during variable renewable energy conditions.
  • Designed a model using output error identification method.
  • Developed a state-space model of the electrolyzer and converter by averaging method.
  • Implemented robust control strategy based on normalized coprime factorizations.
  • Reduced the full-order controller via frequency-weighted closed-loop sensitivity functions.
  • Conducted experimental validation to assess controller performance.
  • Proposed several methods for identifying the electrolyzer behavior.
  • Controller demonstrated robustness against variations from renewable energy sources.
  • Reduced-order controller performed equally to full-order controller in closed-loop testing.
  • Experimental tests confirmed control effectiveness under changing environmental conditions.

Abstract

This paper investigates the design and experimental validation of robust control for a proton exchange membrane water electrolyzer integrated with a stacked interleaved buck converter, aimed at regulating hydrogen production from renewable energy source. A model of the electrolyzer is obtained using the output error identification method. A State-space model of the electrolyzer coupled with the converter is therefore determined using the averaging method. To address variations in operating conditions during hydrogen production under renewable energy source intermittency, a robust control strategy based on normalized coprime factorizations is implemented. The obtained the full-order controller is reduced using a method that incorporates closed-loop behavior into the truncation process via frequency-weighted closed-loop sensitivity functions. Experimental validation demonstrates the controller’s efficacy in adapting to changes in set-points and environmental conditions, underlining its theoretical robustness against renewable energy source intermittency. • Several PEMWE identification methods are proposed and discussed. • Designed controller ensures robustness against RES variations. • Reduced-order controller achieves same performance as full-order one in closed-loop. • Experimental validation of PEMWE control under RES intermittency.

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Cite This Study

Ziane et al. (2026) studied this question.

synapsesocial.com/papers/69e320fd40886becb65402achttps://doi.org/10.1016/j.enconman.2026.121441
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