The Introduction of Sustainable Aviation Fuels—A Discussion of Challenges, Options and Alternatives
Abstract
:1. Introduction
2. Reducing Carbon Emissions in Aviation in Theory and Practice
3. The European Commission’s Proposal for a SAF Blending Mandate
3.1. Outline
3.2. Discussion of SAF Availability
3.3. Economic and Competitive Impacts
4. Further Design Options for the Introduction of SAF
4.1. Book-and-Claim Approach
4.2. Use of Aviation-Specific State Revenues for Subsidizing SAF Introduction
5. Alternatives to SAF
6. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Feedstock | Conversion Pathway | Estimated Lifecycle CO2-eq Emissions (g/MJ Jet Fuel) | Lifecycle CO2 Reduction Potential vs. Fossil Fuel |
---|---|---|---|
Agricultural residues | FT | 7.7 | −90.8% |
Forestry residues | FT | 8.3 | −90.1% |
Municipal solid waste | FT | 5.2 | −93.8% |
Poplar | FT | 20.8 | −75.1% |
Miscanthus | FT | −2.2 | −102.6% |
Switchgrass | FT | 15.7 | −81.2% |
Tallow | HEFA | 22.5 | −73.1% |
Used Cooking Oil | HEFA | 13.9 | −83.4% |
Palm fatty acid distillate | HEFA | 20.7 | −75.2% |
Corn Oil | HEFA | 17.2 | −79.4% |
Soybean Oil | HEFA | 66.2 | −20.8% |
Rapeseed Oil | HEFA | 73.4 | −12.2% |
Camelina Oil | HEFA | 28.6 | −65.8% |
Agricultural residues | ATJ (Isobutanol) | 29.3 | −65.0% |
Forestry residues | ATJ (Isobutanol) | 23.8 | −71.5% |
Sugarcane | ATJ (Isobutanol) | 33.1 | −60.4% |
Corn grain | ATJ (Isobutanol) | 85.5 | 2.3% |
Miscanthus | ATJ (Isobutanol) | 19.8 | −76.3% |
Switchgrass | ATJ (Isobutanol) | 48.8 | −41.6% |
Molasses | ATJ (Isobutanol) | 36.1 | −56.8% |
Sugarcane | ATJ (Ethanol) | 32.8 | −60.8% |
Corn Grain | ATJ (Ethanol) | 100.6 | 20.3% |
Agricultural residues | ATJ (Ethanol) | 24.6–39.7 | −70.6%–−52.5% |
Forestry residues | ATJ (Ethanol) | 24.9–40.0 | −70.2%–−52.2% |
Miscanthus | ATJ (Ethanol) | 9.3–24.3 | −88.9%–−70.9% |
Switchgrass | ATJ (Ethanol) | 33.7–48.7 | −59.7%–−41.7% |
Waste gases | ATJ (Ethanol) | 29.4–42.4 | −64.8%–−49.8% |
Sugarcane | SIP | 43.9 | −47.5% |
Sugarbeet | SIP | 43.6 | −47.8% |
Conversion Process | Abbreviation | Possible Feedstocks | Maximum Blending Ratio by Volume |
---|---|---|---|
Fischer–Tropsch hydroprocessed synthesized paraffinic kerosene | FT-SPK | Coal, natural gas, biomass | 50% |
Synthesized paraffinic kerosene from hydroprocessed esters and fatty acids | HEFA-SPK | Bio-oils, animal fat, recycled oils | 50% |
Synthesized iso-paraffins from hydroprocessed fermented sugars | SIP | Biomass used for sugar production | 10% |
Synthesized kerosene with aromatics derived by alkylation of light aromatics from non-petroleum sources | FT-SKA | Coal, natural gas, biomass | 50% |
Alcohol to jet synthetic paraffinic kerosene | ATJ-SPK | Biomass from ethanol or isobutanol production | 50% |
Catalytic hydrothermolysis jet fuel | CHJ | Triglycerides such as soybean oil, jatropha oil, camelina oil, carinata oil, and tung oil | 50% |
Synthesized paraffinic kerosene from hydrocarbon-hydroprocessed esters and fatty acids | HC-HEFA-SPK | Algae | 10% |
Co-hydroprocessing of esters and fatty acids in a conventional petroleum refinery | Co-processed HEFA | Fats, oils, and greases (FOG) co-processed with petroleum | 5% |
Co-hydroprocessing of Fischer-Tropsch hydrocarbons in a conventional petroleumrefinery | Co-processed FT | Fischer–Tropsch hydrocarbons co-processed with petroleum | 5% |
Airline/Airline Group | Business Year | Total Costs in Millions | Fuel Costs in Millions | Fuel Cost Share (% of Total Costs) | Operating Profit Margin | Source |
---|---|---|---|---|---|---|
Air France KLM | 2019 | EUR 26,047 | EUR 5511 | 21.2% | 3.2% | [46] |
easyJet | 2018/2019 | GBP 5984 | GBP 1416 | 23.7% | 6.7% | [47] |
IAG | 2019 | GBP 22,221 | GBP 6021 | 27.1% | 13.9% | [48] |
Lufthansa (Network Airlines) | 2019 | EUR 22,132 | EUR 5326 | 24.1% | 7.8% | [49] |
Lufthansa (Eurowings) | 2019 | EUR 4655 | EUR 1054 | 22.6% | −4.0% | [49] |
Ryanair | 2019/2020 | EUR 2762 | 34.2% | 13.3% | [50] |
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Grimme, W. The Introduction of Sustainable Aviation Fuels—A Discussion of Challenges, Options and Alternatives. Aerospace 2023, 10, 218. https://doi.org/10.3390/aerospace10030218
Grimme W. The Introduction of Sustainable Aviation Fuels—A Discussion of Challenges, Options and Alternatives. Aerospace. 2023; 10(3):218. https://doi.org/10.3390/aerospace10030218
Chicago/Turabian StyleGrimme, Wolfgang. 2023. "The Introduction of Sustainable Aviation Fuels—A Discussion of Challenges, Options and Alternatives" Aerospace 10, no. 3: 218. https://doi.org/10.3390/aerospace10030218
APA StyleGrimme, W. (2023). The Introduction of Sustainable Aviation Fuels—A Discussion of Challenges, Options and Alternatives. Aerospace, 10(3), 218. https://doi.org/10.3390/aerospace10030218