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Cost-optimized replacement strategies for water electrolysis systems affected by degradation

Author

Listed:
  • Marie Arnold
  • Jonathan Brandt
  • Geert Tjarks
  • Anna Vanselow
  • Richard Hanke-Rauschenbach

Abstract

A key factor in reducing the cost of green hydrogen production projects using water electrolysis systems is to minimize the degradation of the electrolyzer stacks, as this impacts the lifetime of the stacks and therefore the frequency of their replacement. To create a better understanding of the economics of stack degradation, we present a linear optimization approach minimizing the costs of a green hydrogen supply chain including an electrolyzer with degradation modeling. By calculating the levelized cost of hydrogen depending on a variable degradation threshold, the cost optimal time for stack replacement can be identified. We further study how this optimal time of replacement is affected by uncertainties such as the degradation scale, the load-dependency of both degradation and energy demand, and the costs of the electrolyzer. The variation of the identified major uncertainty degradation scale results in a difference of up to 9 years regarding the cost optimal time for stack replacement, respectively lifetime of the stacks. Therefore, a better understanding of the degradation impact is imperative for project cost reductions, which in turn would support a proceeding hydrogen market ramp-up.

Suggested Citation

  • Marie Arnold & Jonathan Brandt & Geert Tjarks & Anna Vanselow & Richard Hanke-Rauschenbach, 2025. "Cost-optimized replacement strategies for water electrolysis systems affected by degradation," Papers 2508.16370, arXiv.org.
  • Handle: RePEc:arx:papers:2508.16370
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    References listed on IDEAS

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    1. Adrian Odenweller & Falko Ueckerdt, 2025. "The green hydrogen ambition and implementation gap," Nature Energy, Nature, vol. 10(1), pages 110-123, January.
    2. Pfenninger, Stefan & Staffell, Iain, 2016. "Long-term patterns of European PV output using 30 years of validated hourly reanalysis and satellite data," Energy, Elsevier, vol. 114(C), pages 1251-1265.
    3. Zhang, Qinjin & Xie, Di & Zeng, Yuji & Liu, Yancheng & Yu, Heyang & Liu, Siyuan, 2024. "Optimizing wind-solar hydrogen production through collaborative strategy with ALK/PEM multi-electrolyzer arrays," Renewable Energy, Elsevier, vol. 232(C).
    4. Superchi, Francesco & Papi, Francesco & Mannelli, Andrea & Balduzzi, Francesco & Ferro, Francesco Maria & Bianchini, Alessandro, 2023. "Development of a reliable simulation framework for techno-economic analyses on green hydrogen production from wind farms using alkaline electrolyzers," Renewable Energy, Elsevier, vol. 207(C), pages 731-742.
    5. Jonathan Brandt & Thore Iversen & Christoph Eckert & Florian Peterssen & Boris Bensmann & Astrid Bensmann & Michael Beer & Hartmut Weyer & Richard Hanke-Rauschenbach, 2024. "Cost and competitiveness of green hydrogen and the effects of the European Union regulatory framework," Nature Energy, Nature, vol. 9(6), pages 703-713, June.
    6. Zhang, Hong & Yuan, Tiejiang, 2022. "Optimization and economic evaluation of a PEM electrolysis system considering its degradation in variable-power operations," Applied Energy, Elsevier, vol. 324(C).
    7. Sayed-Ahmed, H. & Toldy, Á.I. & Santasalo-Aarnio, A., 2024. "Dynamic operation of proton exchange membrane electrolyzers—Critical review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 189(PA).
    8. Staffell, Iain & Pfenninger, Stefan, 2016. "Using bias-corrected reanalysis to simulate current and future wind power output," Energy, Elsevier, vol. 114(C), pages 1224-1239.
    9. Jonathan Brandt & Astrid Bensmann & Richard Hanke-Rauschenbach, 2025. "Negative redispatch power for green hydrogen production: Game changer or lame duck? A German perspective," Papers 2508.06500, arXiv.org.
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