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Solar-powered hybrid station with integrated liquid air and gaseous hydrogen energy storage for electric vehicle charging and hydrogen refueling

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journal contribution
submitted on 2025-09-17, 06:30 and posted on 2025-09-17, 06:31 authored by Nurettin Sezer, Sertac Bayhan
<p>This study presents the design and assessment of a solar-powered hybrid station by incorporating several energy conversion, storage, and recovery strategies to maximize system reliability, energy utilization, and efficiency. The system is powered by solar photovoltaic modules and integrated with liquid air and electrolytic hydrogen energy storage. The produced hydrogen is compressed and precooled to meet the requirements of fast refueling. The heat from hydrogen compression and excess heat from Liquid Air Energy Storage (LAES) discharge are recovered for additional power generation in a Trilateral Flash Cycle (TFC). The system is designed to fast refuel four fuel cell electric vehicles and fast recharge eight battery electric vehicles simultaneously. Thermodynamic calculations are performed to analyze the system in detail and a parametric study is conducted to investigate the effect of various parameters on system performance. The results indicate that the integrated system is promising to generate and store the required energy for the hybrid station. The efficiency of the PV, LAES, TFC, electrolyzer, and overall system is found to be 16 %, 57.1 %, 11.6 %, 56.7 %, and 55.5 %, respectively.</p><h2>Other Information</h2> <p> Published in: International Journal of Hydrogen Energy<br> License: <a href="http://creativecommons.org/licenses/by/4.0/" target="_blank">http://creativecommons.org/licenses/by/4.0/</a><br>See article on publisher's website: <a href="https://dx.doi.org/10.1016/j.ijhydene.2025.151338" target="_blank">https://dx.doi.org/10.1016/j.ijhydene.2025.151338</a></p>

Funding

Open Access funding provided by the Qatar National Library.

Qatar National Research Fund (ARG01-0428-230023).

History

Language

  • English

Publisher

Elsevier

Publication Year

  • 2025

License statement

This Item is licensed under the Creative Commons Attribution 4.0 International License.

Institution affiliated with

  • Hamad Bin Khalifa University
  • Qatar Environment and Energy Research Institute - HBKU