TY - JOUR
T1 - Results of the H2Avia Project
T2 - Potential of Hydrogen for Global Aviation
AU - Peter, Fabian Nicolas
AU - Engelmann, Marc
AU - Fikry, Meriem
AU - Lüdemann, Michael
AU - Moser, Leonard
AU - Warsch, Christopher
AU - Balderas-Xicohtencatl, Rafael
AU - Muslić, Adnan
AU - Erden, Elif
AU - Hornung, Mirko
AU - Welsch, Tobias
AU - Schültke, Florian
AU - Stumpf, Eike
AU - Kakkar, Samarth
AU - Heinze, Wolfgang
AU - Haupt, Matthias
AU - Radespiel, Rolf
AU - Kriewall Peters, Vivian
AU - Bielsky, Thimo
AU - Thielecke, Frank
AU - Moebs, Nicolas
AU - Strohmayer, Andreas
N1 - Publisher Copyright:
© 2026 by the authors.
PY - 2026/6
Y1 - 2026/6
N2 - This paper presents an integrated assessment of liquid hydrogen as an aviation energy carrier, covering fuel production, aircraft performance, and fleet-level climate impacts. The results, based on the H2Avia research project, indicate substantial potential for reducing life-cycle global warming impacts compared to conventional kerosene. The analyses conducted for the interdisciplinary assessment are presented. The analysis shows that the use of liquid hydrogen eliminates CO2 emissions during fuel burn, resulting in a significant reduction in global warming potential compared to conventional kerosene, despite remaining upstream emissions from production and transport. The aircraft application cases and the applied technologies assessment scenario are described. The modeled technologies essential for the hydrogen aircraft are discussed, and exemplary values are given. Integrated overall aircraft performance results are given and discussed. At the aircraft level, hydrogen-based aircraft require an 8–18% increase in design mission block energy compared to a 2040 kerosene baseline yet still achieve a reduction in effective global warming potential of 55–86% comparing a representative pair route between Europe and North America (6730 km). An overview of the fleet modeling approach and the applied scenarios is given. For a scenario with energy cost and climate impact as equally weighted minimization goals, the global fleet analysis yields a global warming potential reduction of 60% compared to the non-liquid hydrogen baseline scenario. Overall, the results suggest that liquid hydrogen-powered aircraft can deliver significant mission- and fleet-level reductions in global warming potential and thus represent a promising pathway for achieving long-term aviation climate targets.
AB - This paper presents an integrated assessment of liquid hydrogen as an aviation energy carrier, covering fuel production, aircraft performance, and fleet-level climate impacts. The results, based on the H2Avia research project, indicate substantial potential for reducing life-cycle global warming impacts compared to conventional kerosene. The analyses conducted for the interdisciplinary assessment are presented. The analysis shows that the use of liquid hydrogen eliminates CO2 emissions during fuel burn, resulting in a significant reduction in global warming potential compared to conventional kerosene, despite remaining upstream emissions from production and transport. The aircraft application cases and the applied technologies assessment scenario are described. The modeled technologies essential for the hydrogen aircraft are discussed, and exemplary values are given. Integrated overall aircraft performance results are given and discussed. At the aircraft level, hydrogen-based aircraft require an 8–18% increase in design mission block energy compared to a 2040 kerosene baseline yet still achieve a reduction in effective global warming potential of 55–86% comparing a representative pair route between Europe and North America (6730 km). An overview of the fleet modeling approach and the applied scenarios is given. For a scenario with energy cost and climate impact as equally weighted minimization goals, the global fleet analysis yields a global warming potential reduction of 60% compared to the non-liquid hydrogen baseline scenario. Overall, the results suggest that liquid hydrogen-powered aircraft can deliver significant mission- and fleet-level reductions in global warming potential and thus represent a promising pathway for achieving long-term aviation climate targets.
KW - aviation climate impact
KW - fleet modeling
KW - future scenarios
KW - hydrogen aircraft design
KW - hydrogen aviation
KW - life-cycle assessment
UR - https://www.scopus.com/pages/publications/105042693430
U2 - 10.3390/aerospace13060550
DO - 10.3390/aerospace13060550
M3 - Article
AN - SCOPUS:105042693430
SN - 2226-4310
VL - 13
JO - Aerospace
JF - Aerospace
IS - 6
M1 - 550
ER -