Data-Driven Modelling and Simulation of Fuel Cell Hybrid Electric Powertrain

  • Mehroze Iqbal
  • , Amel Benmouna
  • , Mohamed Becherif
  • , Rajender Boddula (Editor)

Research output: Contribution to journalArticlepeer-review

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Abstract

Inspired by the Toyota Mirai, this study presents a high-fidelity data-driven approach for modelling and simulation of a fuel cell hybrid electric powertrain. This study utilises technical assessment data sourced from Argonne National Laboratory’s publicly available report, faithfully modelling most of the vehicle subsystems as data-driven entities. The simulation framework is developed in the MATLAB/Simulink environment and is based on a power dynamics approach, capturing nonlinear interactions and performance intricacies between different powertrain elements. This study investigates subsystem synergies and performance boundaries under a combined driving cycle composed of the NEDC, WLTP Class 3 and US06 profiles, representing urban, extra-urban and aggressive highway conditions. To emulate the real-world load-following strategy, a state transition power management and allocation method is synthesised. The proposed method dynamically governs the power flow between the fuel cell stack and the traction battery across three operational states, allowing the battery to stay within its allocated bounds. This simulation framework offers a near-accurate and computationally efficient digital counterpart to a commercial hybrid powertrain, serving as a valuable tool for educational and research purposes.
Original languageEnglish
Article number53
Number of pages20
JournalHydrogen
Volume6
Issue number3
Early online date1 Aug 2025
DOIs
Publication statusE-pub ahead of print - 1 Aug 2025

Keywords

  • power management
  • fuel cell hybrid
  • simulation
  • modelling
  • digital simulator
  • Toyota Mirai

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