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Biogas Potential from Slums as a Sustainable and Resilient Route for Renewable Energy Diffusion in Urban Areas and Organic Waste Management in Vulnerable Communities in São Paulo

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  • Camila Agner D’Aquino

    (Institute of Energy and Environment, University of São Paulo, 1289 Professor Luciano Gualberto Ave., Cidade Universitária, Butantã 05508-010, SP, Brazil)

  • Bruno Alves Pereira

    (Institute of Energy and Environment, University of São Paulo, 1289 Professor Luciano Gualberto Ave., Cidade Universitária, Butantã 05508-010, SP, Brazil)

  • Tulio Ferreira Sawatani

    (Institute of Energy and Environment, University of São Paulo, 1289 Professor Luciano Gualberto Ave., Cidade Universitária, Butantã 05508-010, SP, Brazil)

  • Samantha Coelho de Moura

    (Institute of Energy and Environment, University of São Paulo, 1289 Professor Luciano Gualberto Ave., Cidade Universitária, Butantã 05508-010, SP, Brazil)

  • Alice Tagima

    (Institute of Energy and Environment, University of São Paulo, 1289 Professor Luciano Gualberto Ave., Cidade Universitária, Butantã 05508-010, SP, Brazil)

  • Júlia Carolina Bevervanso Borba Ferrarese

    (Institute of Energy and Environment, University of São Paulo, 1289 Professor Luciano Gualberto Ave., Cidade Universitária, Butantã 05508-010, SP, Brazil)

  • Samantha Christine Santos

    (Institute of Energy and Environment, University of São Paulo, 1289 Professor Luciano Gualberto Ave., Cidade Universitária, Butantã 05508-010, SP, Brazil)

  • Ildo Luis Sauer

    (Institute of Energy and Environment, University of São Paulo, 1289 Professor Luciano Gualberto Ave., Cidade Universitária, Butantã 05508-010, SP, Brazil)

Abstract

Slums are populated poor areas inside urban centers, mostly deprived of good-quality public services and exposed to inappropriate waste disposal and energy poverty. Using the organic fraction waste from these communities to generate high value-added products, including electricity, heat, and fertilizer, provides a circular bioeconomy with mitigation of greenhouse gas emissions, reducing environmental pollution and diseases. The present study aimed to demonstrate the feasibility of producing bioelectricity from the biogas obtained through the anaerobic digestion of the 400,000 tons of food waste generated in São Paulo’s slums, the largest city in Latin America. The biogas potential was calculated using results obtained from previous studies, expanded to the slums, mapped, and discussed the environmental impact of waste mismanagement and the renewable energy source (RES) integration into the local energy system. The results show a bioelectricity potential of up to 147,734 MWh/y, representing 1.3% of the residential electricity demand with an associated potential reduction of 2111.7 CO 2 eq Gg/y.

Suggested Citation

  • Camila Agner D’Aquino & Bruno Alves Pereira & Tulio Ferreira Sawatani & Samantha Coelho de Moura & Alice Tagima & Júlia Carolina Bevervanso Borba Ferrarese & Samantha Christine Santos & Ildo Luis Saue, 2022. "Biogas Potential from Slums as a Sustainable and Resilient Route for Renewable Energy Diffusion in Urban Areas and Organic Waste Management in Vulnerable Communities in São Paulo," Sustainability, MDPI, vol. 14(12), pages 1-10, June.
  • Handle: RePEc:gam:jsusta:v:14:y:2022:i:12:p:7016-:d:833945
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    References listed on IDEAS

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    1. Kothari, Richa & Tyagi, V.V. & Pathak, Ashish, 2010. "Waste-to-energy: A way from renewable energy sources to sustainable development," Renewable and Sustainable Energy Reviews, Elsevier, vol. 14(9), pages 3164-3170, December.
    2. von Wirth, Timo & Gislason, Linda & Seidl, Roman, 2018. "Distributed energy systems on a neighborhood scale: Reviewing drivers of and barriers to social acceptance," Renewable and Sustainable Energy Reviews, Elsevier, vol. 82(P3), pages 2618-2628.
    3. D'Aquino, Camila A. & Santos, Samantha C. & Sauer, Ildo L., 2022. "Biogas as an alternative source of decentralized bioelectricity for large waste producers: An assessment framework at the University of São Paulo," Energy, Elsevier, vol. 239(PD).
    4. Scarlat, Nicolae & Dallemand, Jean-François & Fahl, Fernando, 2018. "Biogas: Developments and perspectives in Europe," Renewable Energy, Elsevier, vol. 129(PA), pages 457-472.
    5. Giovanni Frigo & Manuel Baumann & Rafaela Hillerbrand, 2021. "Energy and the Good Life: Capabilities as the Foundation of the Right to Access Energy Services," Journal of Human Development and Capabilities, Taylor & Francis Journals, vol. 22(2), pages 218-248, April.
    6. Zhou, Hewen & Yang, Qing & Gul, Eid & Shi, Mengmeng & Li, Jiashuo & Yang, Minjiao & Yang, Haiping & Chen, Bin & Zhao, Haibo & Yan, Yunjun & Erdoğan, Güneş & Bartocci, Pietro & Fantozzi, Francesco, 2021. "Decarbonizing university campuses through the production of biogas from food waste: An LCA analysis," Renewable Energy, Elsevier, vol. 176(C), pages 565-578.
    7. Velásquez Piñas, Jean Agustin & Venturini, Osvaldo José & Silva Lora, Electo Eduardo & del Olmo, Oscar Almazan & Calle Roalcaba, Orly Denisse, 2019. "An economic holistic feasibility assessment of centralized and decentralized biogas plants with mono-digestion and co-digestion systems," Renewable Energy, Elsevier, vol. 139(C), pages 40-51.
    8. Lijó, Lucía & González-García, Sara & Bacenetti, Jacopo & Moreira, Maria Teresa, 2017. "The environmental effect of substituting energy crops for food waste as feedstock for biogas production," Energy, Elsevier, vol. 137(C), pages 1130-1143.
    9. Martina Artmann & Katharina Sartison, 2018. "The Role of Urban Agriculture as a Nature-Based Solution: A Review for Developing a Systemic Assessment Framework," Sustainability, MDPI, vol. 10(6), pages 1-32, June.
    10. Skovsgaard, Lise & Jacobsen, Henrik Klinge, 2017. "Economies of scale in biogas production and the significance of flexible regulation," Energy Policy, Elsevier, vol. 101(C), pages 77-89.
    11. Nilton Bispo Amado & Erick Del Bianco Pelegia & Ildo Luís Sauer, 2021. "Capacity Value from Wind and Solar Sources in Systems with Variable Dispatchable Capacity—An Application in the Brazilian Hydrothermal System," Energies, MDPI, vol. 14(11), pages 1-26, May.
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