This work presents conceptual design activities carried out within the Clean Aviation FAME (Fuel cell propulsion system for Aircraft Megawatt Engines) project, focused on a liquid hydrogen and fuel-cell-powered short-range aircraft targeting a 2035 entry into service. A parametric analysis framework was developed to support the definition and optimization of aircraft-level architectures under realistic regulatory and technological constraints. Trade studies were conducted to investigate the influence of LH2 tank design parameters and propulsion system layout on fuel consumption and overall performance. The current FAME concept aircraft-featuring four 2.5 MW fuel cell propulsion systems and a 110m2wing-is introduced and assessed. A final sensitivity analysis evaluates the configuration’s robustness to degraded fuel cell efficiency and increased drag due to thermal management integration. Results demonstrate that performance deteriorates nonlinearly as technological assumptions degrade, reinforcing the need to maintain high fuel cell efficiency and effective integration of cooling systems to ensure compliance with mission and regulatory requirements.
Conceptual Design and Technology Sensitivity Analysis of a Fuel Cell Short-Range Aircraft / Di Stasio, M., Nicolosi, F., Melone, G., Cusati, V.. - (2025). (AIAA AVIATION FORUM AND ASCEND, 2025 usa 2025) [10.2514/6.2025-3370].
Conceptual Design and Technology Sensitivity Analysis of a Fuel Cell Short-Range Aircraft
Di Stasio Mario;Nicolosi F.
;Melone Giuseppe;Cusati V.
2025
Abstract
This work presents conceptual design activities carried out within the Clean Aviation FAME (Fuel cell propulsion system for Aircraft Megawatt Engines) project, focused on a liquid hydrogen and fuel-cell-powered short-range aircraft targeting a 2035 entry into service. A parametric analysis framework was developed to support the definition and optimization of aircraft-level architectures under realistic regulatory and technological constraints. Trade studies were conducted to investigate the influence of LH2 tank design parameters and propulsion system layout on fuel consumption and overall performance. The current FAME concept aircraft-featuring four 2.5 MW fuel cell propulsion systems and a 110m2wing-is introduced and assessed. A final sensitivity analysis evaluates the configuration’s robustness to degraded fuel cell efficiency and increased drag due to thermal management integration. Results demonstrate that performance deteriorates nonlinearly as technological assumptions degrade, reinforcing the need to maintain high fuel cell efficiency and effective integration of cooling systems to ensure compliance with mission and regulatory requirements.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.


