Life-cycle analysis of greenhouse gas emissions from renewable jet fuel production
Анализ жизненного цикла выбросов парниковых газов при производстве возобновляемого авиационного топлива
2017-03-14
SCID: 54.1/unp8mkcj
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Fischer-Tropsch pathwaysco-product allocationlife-cycle analysisrenewable jet fuelwell-to-wake emissions
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Abstract (AI)
BACKGROUND: The introduction of renewable jet fuel (RJF) is considered an important emission mitigation measure for the aviation industry. This study compares the well-to-wake (WtWa) greenhouse gas (GHG) emission performance of multiple RJF conversion pathways and explores the impact of different co-product allocation methods. The insights obtained in this study are of particular importance if RJF is included as an emission mitigation instrument in the global Carbon Offsetting and Reduction Scheme for International Aviation (CORSIA). RESULTS: Fischer-Tropsch pathways yield the highest GHG emission reduction compared to fossil jet fuel (86-104%) of the pathways in scope, followed by Hydrothermal Liquefaction (77-80%) and sugarcane- (71-75%) and corn stover-based Alcohol-to-Jet (60-75%). Feedstock cultivation, hydrogen and conversion inputs were shown to be major contributors to the overall WtWa GHG emission performance. The choice of allocation method mainly affects pathways yielding high shares of co-products or producing co-products which effectively displace carbon intensive products (e.g., electricity). CONCLUSIONS: Renewable jet fuel can contribute to significant reduction of aviation-related GHG emissions, provided the right feedstock and conversion technology are used. The GHG emission performance of RJF may be further improved by using sustainable hydrogen sources or applying carbon capture and storage. Based on the character and impact of different co-product allocation methods, we recommend using energy and economic allocation (for non-energy co-products) at a global level, as it leverages the universal character of energy allocation while adequately valuing non-energy co-products.
Key Findings
1
Co-product allocation methods primarily affected pathways with large co-product shares or co-products displacing carbon-intensive products such as electricity.
2
Feedstock cultivation, hydrogen production, and conversion inputs were major contributors to well-to-wake greenhouse-gas emissions.
3
Fischer–Tropsch pathways achieved the highest greenhouse-gas reductions versus fossil jet fuel, at 86–104%.
4
Hydrothermal liquefaction reduced greenhouse-gas emissions by 77–80%, while sugarcane- and corn-stover-based Alcohol-to-Jet achieved 60–75%.
5
Renewable jet fuel can substantially reduce aviation emissions, with further improvements possible through sustainable hydrogen and carbon capture and storage; energy and economic allocation are recommended globally.
Research Object
Renewable jet fuel production pathways, including Fischer–Tropsch, Hydrothermal Liquefaction, and sugarcane- and corn-stover-based Alcohol-to-Jet pathways
Research Subject
Well-to-wake greenhouse gas emission performance and the effects of feedstock, production inputs, conversion technology, and co-product allocation methods
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2017-03-14
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