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Biogas from Anaerobic Digestion as an Energy Vector: Current Upgrading Development

Author

Listed:
  • Raquel Iglesias

    (Department of Energy, Research Centre for Energy, Environment and Technology (CIEMAT), 28040 Madrid, Spain)

  • Raúl Muñoz

    (Institute of Sustainable Processes, University of Valladolid, 47011 Valladolid, Spain)

  • María Polanco

    (Institute of Sustainable Processes, University of Valladolid, 47011 Valladolid, Spain)

  • Israel Díaz

    (Institute of Sustainable Processes, University of Valladolid, 47011 Valladolid, Spain)

  • Ana Susmozas

    (Department of Energy, Research Centre for Energy, Environment and Technology (CIEMAT), 28040 Madrid, Spain)

  • Antonio D. Moreno

    (Department of Energy, Research Centre for Energy, Environment and Technology (CIEMAT), 28040 Madrid, Spain)

  • María Guirado

    (Department of Environment, Research Centre for Energy, Environment and Technology (CIEMAT), 28040 Madrid, Spain)

  • Nely Carreras

    (Department of Environment, Research Centre for Energy, Environment and Technology (CIEMAT), 28040 Madrid, Spain)

  • Mercedes Ballesteros

    (Department of Energy, Research Centre for Energy, Environment and Technology (CIEMAT), 28040 Madrid, Spain)

Abstract

The present work reviews the role of biogas as advanced biofuel in the renewable energy system, summarizing the main raw materials used for biogas production and the most common technologies for biogas upgrading and delving into emerging biological methanation processes. In addition, it provides a description of current European legislative framework and the potential biomethane business models as well as the main biogas production issues to be addressed to fully deploy these upgrading technologies. Biomethane could be competitive due to negative or zero waste feedstock prices, and competitive to fossil fuels in the transport sector and power generation if upgrading technologies become cheaper and environmentally sustainable.

Suggested Citation

  • Raquel Iglesias & Raúl Muñoz & María Polanco & Israel Díaz & Ana Susmozas & Antonio D. Moreno & María Guirado & Nely Carreras & Mercedes Ballesteros, 2021. "Biogas from Anaerobic Digestion as an Energy Vector: Current Upgrading Development," Energies, MDPI, vol. 14(10), pages 1-30, May.
  • Handle: RePEc:gam:jeners:v:14:y:2021:i:10:p:2742-:d:552193
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    4. Francesco Calise & Francesco Liberato Cappiello & Luca Cimmino & Marialuisa Napolitano & Maria Vicidomini, 2023. "Dynamic Simulation and Thermoeconomic Analysis of a Novel Hybrid Solar System for Biomethane Production by the Organic Fraction of Municipal Wastes," Energies, MDPI, vol. 16(6), pages 1-23, March.
    5. Stephanie Taboada & Lori Clark & Jake Lindberg & David J. Tonjes & Devinder Mahajan, 2021. "Quantifying the Potential of Renewable Natural Gas to Support a Reformed Energy Landscape: Estimates for New York State," Energies, MDPI, vol. 14(13), pages 1-17, June.
    6. Marcin Zieliński & Joanna Kazimierowicz & Marcin Dębowski, 2022. "Advantages and Limitations of Anaerobic Wastewater Treatment—Technological Basics, Development Directions, and Technological Innovations," Energies, MDPI, vol. 16(1), pages 1-39, December.
    7. Magdalena Tymińska & Zbigniew Skibko & Andrzej Borusiewicz, 2023. "The Effect of Agricultural Biogas Plants on the Quality of Farm Energy Supply," Energies, MDPI, vol. 16(12), pages 1-18, June.
    8. Ruggero Bellini & Ilaria Bassani & Arianna Vizzarro & Annalisa Abdel Azim & Nicolò Santi Vasile & Candido Fabrizio Pirri & Francesca Verga & Barbara Menin, 2022. "Biological Aspects, Advancements and Techno-Economical Evaluation of Biological Methanation for the Recycling and Valorization of CO 2," Energies, MDPI, vol. 15(11), pages 1-34, June.
    9. Aleksandra Szaja & Agnieszka Montusiewicz & Magdalena Lebiocka, 2021. "The Energetic Aspect of Organic Wastes Addition on Sewage Sludge Anaerobic Digestion: A Laboratory Investigation," Energies, MDPI, vol. 14(19), pages 1-12, September.

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