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  4. Model-based assessment of the environmental impacts of fuel cell systems designed for eVTOLs
 
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Model-based assessment of the environmental impacts of fuel cell systems designed for eVTOLs

Publikationstyp
Journal Article
Date Issued
2023
Sprache
English
Author(s)
Pinheiro Melo, Sofia  
Toghyani, Somayeh  
Cerdas, Felipe  
Liu, Xi  
Gao, Xin  
Lindner, Luisa  
Barke, Alexander  
Thies, Christian  orcid-logo
Resilient and Sustainable Operations and Supply Chain Management W-EXK1  
Spengler, Thomas Stefan  
Herrmann, Christoph  
TORE-URI
http://hdl.handle.net/11420/14524
Journal
International journal of hydrogen energy  
Volume
48
Issue
8
Start Page
3171
End Page
3187
Citation
International Journal of Hydrogen Energy 48 (8): 3171-3187 (2023)
Publisher DOI
10.1016/j.ijhydene.2022.10.083
Scopus ID
2-s2.0-85141525580
Publisher
Elsevier
Hydrogen fuel cells have increasingly gained relevance for electric vertical take-off and landing aircraft due to their potential to overcome the main challenges related to batteries. Previous studies have investigated their feasibility for urban air mobility; however, a robust assessment of their environmental implications is still lacking. To fill this gap, this study follows a model-based life cycle engineering approach to quantify the environmental impacts of a fuel cell system designed for three ranges. The production burdens distributed along the lifetime are demonstrated, showing that, for the best case scenario, 70g CO2-eq. per passenger-kilometer is achieved. Under the premise of green hydrogen production, the stack is the main contributor to the environmental impacts. This changes for non-renewable hydrogen production pathways, where hydrogen has the highest impact contributions. Better environmental performance results from short design ranges; however, systems designed for longer ranges will likely increase attractiveness in the future.
Subjects
eVTOLs
Fuel cells
Hydrogen
Life cycle engineering
Urban air mobility
DDC Class
600: Technik
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