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Considerations on GHG emissions and energy balances of promising aviation biofuel pathways

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  • O’Connell, Adrian
  • Kousoulidou, Marina
  • Lonza, Laura
  • Weindorf, Werner

Abstract

This article presents results of a European Commission Joint Research Centre study to analyse the Greenhouse Gas (GHG) emissions and energy efficiency of various options for alternative aviation fuels. Interest in alternative aviation fuels is growing, as the sector seeks viable options to reduce increasing GHG emissions. For biofuels non-biogenic emissions arise from cultivation, harvesting and transport of the feedstock, as well as from their conversion into biofuel. It is important to consider whether any emissions reductions benefits are justified by the energy efficiency of each alternative. This article is focussed on American Society for Testing and Materials (ASTM) certifiable alternative drop-in biojet fuels [1], i.e. non-fossil hydrocarbon fuels which have (i) the same chemical structure and (ii) can be blended with conventional jet fuels, (iii) can use the same jet fuel supply infrastructure, and (iv) do not require modification of the aircraft. The results indicate that the biofuels studied tended to exhibit lower GHG than conventional jet fuels although indirect effects or existing uses of materials were not included in this study. Some biofuels performed better at reducing GHG than others (for example biofuels from wastes and residues). A large and important effect on emissions is seen due to land type used for cultivation and whether methane capture is used for certain pathways. GHG savings results vary due to the Life Cycle Analysis (LCA) methodology chosen for dealing with emissions and co-products. Certain pathways are notably more energy intensive than others and strong GHG reduction does not always coincide with high energy efficiency. An overview of industry initiatives and critical EU legislation relating to aviation biofuels is given. The insights from this work are expected to be of use for decision-makers considering investment options in this sector.

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  • O’Connell, Adrian & Kousoulidou, Marina & Lonza, Laura & Weindorf, Werner, 2019. "Considerations on GHG emissions and energy balances of promising aviation biofuel pathways," Renewable and Sustainable Energy Reviews, Elsevier, vol. 101(C), pages 504-515.
  • Handle: RePEc:eee:rensus:v:101:y:2019:i:c:p:504-515
    DOI: 10.1016/j.rser.2018.11.033
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    as
    1. WordFish, 2013. "2012 Publications catalog," Monographs, The WorldFish Center, number 40140, April.
    2. Gutiérrez-Antonio, C. & Gómez-Castro, F.I. & de Lira-Flores, J.A. & Hernández, S., 2017. "A review on the production processes of renewable jet fuel," Renewable and Sustainable Energy Reviews, Elsevier, vol. 79(C), pages 709-729.
    3. Oecd, 2013. "Public Health in an Age of Genomics," OECD Science, Technology and Industry Policy Papers 8, OECD Publishing.
    4. ., 2013. "Global Public Goods," Chapters, in: Earth Economics, chapter 13, pages 149-160, Edward Elgar Publishing.
    5. Oecd, 2013. "Monitoring of Public Procurement," SIGMA Public Procurement Briefs 27, OECD Publishing.
    6. ., 2013. "Why public organizations?," Chapters, in: Free to Fail, chapter 12, pages 139-151, Edward Elgar Publishing.
    7. World Bank & PPIAF, 2013. "Republic of Honduras : Tegucigalpa Municipality PEFA," World Bank Publications - Reports 16033, The World Bank Group.
    8. Yilmaz, Nadir & Atmanli, Alpaslan, 2017. "Sustainable alternative fuels in aviation," Energy, Elsevier, vol. 140(P2), pages 1378-1386.
    9. Oecd, 2013. "Recent publications," Nuclear Law Bulletin, OECD Publishing, vol. 2013(1).
    10. Elliott, Robert J.R. & Lindley, Joanne K., 2017. "Environmental Jobs and Growth in the United States," Ecological Economics, Elsevier, vol. 132(C), pages 232-244.
    11. ., 2013. "Agriculture and the public distribution system," Chapters, in: The Political Economy of Iraq, chapter 7, pages 110-136, Edward Elgar Publishing.
    12. ., 2013. "Public finance and the monetary authorities," Chapters, in: Islamic Finance, chapter 7, pages 156-170, Edward Elgar Publishing.
    13. Staples, Mark D. & Malina, Robert & Suresh, Pooja & Hileman, James I. & Barrett, Steven R.H., 2018. "Aviation CO2 emissions reductions from the use of alternative jet fuels," Energy Policy, Elsevier, vol. 114(C), pages 342-354.
    14. Klein, Bruno Colling & Chagas, Mateus Ferreira & Junqueira, Tassia Lopes & Rezende, Mylene Cristina Alves Ferreira & Cardoso, Terezinha de Fátima & Cavalett, Otavio & Bonomi, Antonio, 2018. "Techno-economic and environmental assessment of renewable jet fuel production in integrated Brazilian sugarcane biorefineries," Applied Energy, Elsevier, vol. 209(C), pages 290-305.
    15. Oecd, 2013. "Organising Central Public Procurement Functions," SIGMA Public Procurement Briefs 26, OECD Publishing.
    Full references (including those not matched with items on IDEAS)

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