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Potential changes in GHG emissions arising from the introduction of biorefineries combining biofuel and electrofuel production within the European Union – A location specific assessment

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  • Buchspies, Benedikt
  • Kaltschmitt, Martin
  • Neuling, Ulf

Abstract

In the upcoming decade, biofuels made from agricultural residues, wastes and by-products will most likely present an integral part of biofuel provision to achieve greenhouse gas (GHG) reduction targets. This study provides an evaluation of potential changes in GHG emissions arising from the introduction of alternative fuels. To this end, potential changes in GHG emissions arising from the introduction of 36 biorefinery configurations in 26 EU member states providing a broad spectrum of products (e.g. biofuels, chemicals, feed and food additives) are assessed. Additional electrofuel production using biogenic CO2 is evaluated. The assessment considers country specific energy supply, market conditions and soil characteristics. The potential changes in GHG emissions arising from the introduction of these facilities range from −206 to 135 and from −221 to −17 g CO2 per MJ of bioethanol provided from wheat grains and wheat straw, respectively. The analysis reveals a high variability in GHG intensities related to marginal feedstock and energy supply as well as potentially occurring displacement effects depending on location. A Monte Carlo simulation confirms potential reductions in GHG emissions. Furthermore, the analysis shows that the methodology used within the EU to evaluate GHG emissions provided by the Renewable Energy Directive (II) denies market access to certain types of biorefineries and production modalities that bear the potential to reduce GHG emissions. It is concluded that EU biofuel policy strategies targeting (advanced) biofuels should consider local conditions and markets and should especially pay attention to potential changes in other markets.

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  • Buchspies, Benedikt & Kaltschmitt, Martin & Neuling, Ulf, 2020. "Potential changes in GHG emissions arising from the introduction of biorefineries combining biofuel and electrofuel production within the European Union – A location specific assessment," Renewable and Sustainable Energy Reviews, Elsevier, vol. 134(C).
  • Handle: RePEc:eee:rensus:v:134:y:2020:i:c:s1364032120306833
    DOI: 10.1016/j.rser.2020.110395
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    References listed on IDEAS

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    1. Wieland Hoppe & Nils Thonemann & Stefan Bringezu, 2018. "Life Cycle Assessment of Carbon Dioxide–Based Production of Methane and Methanol and Derived Polymers," Journal of Industrial Ecology, Yale University, vol. 22(2), pages 327-340, April.
    2. Morales, Marjorie & Quintero, Julián & Conejeros, Raúl & Aroca, Germán, 2015. "Life cycle assessment of lignocellulosic bioethanol: Environmental impacts and energy balance," Renewable and Sustainable Energy Reviews, Elsevier, vol. 42(C), pages 1349-1361.
    3. Weiser, Christian & Zeller, Vanessa & Reinicke, Frank & Wagner, Bernhard & Majer, Stefan & Vetter, Armin & Thraen, Daniela, 2014. "Integrated assessment of sustainable cereal straw potential and different straw-based energy applications in Germany," Applied Energy, Elsevier, vol. 114(C), pages 749-762.
    4. Buchspies, Benedikt & Kaltschmitt, Martin, 2018. "A consequential assessment of changes in greenhouse gas emissions due to the introduction of wheat straw ethanol in the context of European legislation," Applied Energy, Elsevier, vol. 211(C), pages 368-381.
    5. Timothy J. Wallington & James E. Anderson & Robert D. Kleine & Hyung Chul Kim & Heiko Maas & Adam R. Brandt & Gregory A. Keoleian, 2017. "When Comparing Alternative Fuel-Vehicle Systems, Life Cycle Assessment Studies Should Consider Trends in Oil Production," Journal of Industrial Ecology, Yale University, vol. 21(2), pages 244-248, April.
    6. Mikulčić, Hrvoje & Ridjan Skov, Iva & Dominković, Dominik Franjo & Wan Alwi, Sharifah Rafidah & Manan, Zainuddin Abdul & Tan, Raymond & Duić, Neven & Hidayah Mohamad, Siti Nur & Wang, Xuebin, 2019. "Flexible Carbon Capture and Utilization technologies in future energy systems and the utilization pathways of captured CO2," Renewable and Sustainable Energy Reviews, Elsevier, vol. 114(C), pages 1-1.
    7. Patel, Madhumita & Zhang, Xiaolei & Kumar, Amit, 2016. "Techno-economic and life cycle assessment on lignocellulosic biomass thermochemical conversion technologies: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 53(C), pages 1486-1499.
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    2. Ashraf Elfasakhany, 2021. "State of Art of Using Biofuels in Spark Ignition Engines," Energies, MDPI, vol. 14(3), pages 1-26, February.

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