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Creating the Path for Sustainability: Inserting Solar PV in São Francisco Transposition Project

Author

Listed:
  • Jean Carlos da Silva Galdino

    (Energy Planning Program (PPE/UFRJ), Rio de Janeiro 21941-914, Brazil
    Institute of Education, Science and Technology (IFRN), Natal 59015-000, Brazil)

  • Marcos Aurélio Vasconcelos Freitas

    (Energy Planning Program (PPE/UFRJ), Rio de Janeiro 21941-914, Brazil
    International Virtual Institute of Global Changes, Rio de Janeiro 21941-909, Brazil)

  • Neilton Fidelis da Silva

    (Energy Planning Program (PPE/UFRJ), Rio de Janeiro 21941-914, Brazil
    Institute of Education, Science and Technology (IFRN), Natal 59015-000, Brazil
    International Virtual Institute of Global Changes, Rio de Janeiro 21941-909, Brazil)

  • Marcio Giannini Pereira

    (International Virtual Institute of Global Changes, Rio de Janeiro 21941-909, Brazil)

  • João Marcelo Dias Ferreira

    (Center for Alternative and Renewable Energies (CEAR), João Pessoa 58051-970, Brazil
    Department of Engineering and Renewable Energy - DEER, Federal University of Paraiba (UFPB), João Pessoa 58051-900, Brazil)

Abstract

Semiarid regions are characterized by prolonged droughts and drought regimes. In Brazil, 57% of the northeast region is considered semiarid, with an average annual rainfall of less than 800 mm. This climatic condition imposes the need to conduct public policies and develop infrastructure in order to mitigate drought effects. In this context, the São Francisco River transposition project is an alternative to problems concerning city water supplying and aiming at decreasing socio-economic impacts resulting from water restrictions in this region. On the one hand, the river transposition has the potential to establish a new development cycle in Northeastern Brazil, while, on the other, electricity demands, estimated at 2533 GWh/year from 320 MW of installed capacity, require technological alternatives that ensure the project’s financial sustainability. In this context, this study presents proposals for arrangements concerning electric energy production through photovoltaic systems as an alternative supply for the transposition project. To this end, a study of the region’s photovoltaic solar potential was carried out. Based on the performed assessment, three production arrangement proposals that consider the use of (i) the lateral area and (ii) the transposition channel and (iii) part of the area of some reservoirs belonging to the transposition of São Francisco river. The study point out that the use of this potential for all three studied arrangements is favorable to supply, individually or in a combined form, the electrical energy demanded by the pumping stations installed.

Suggested Citation

  • Jean Carlos da Silva Galdino & Marcos Aurélio Vasconcelos Freitas & Neilton Fidelis da Silva & Marcio Giannini Pereira & João Marcelo Dias Ferreira, 2020. "Creating the Path for Sustainability: Inserting Solar PV in São Francisco Transposition Project," Sustainability, MDPI, vol. 12(21), pages 1-27, October.
  • Handle: RePEc:gam:jsusta:v:12:y:2020:i:21:p:8982-:d:437102
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    References listed on IDEAS

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    1. Roberto Gomes Cavalcante Júnior & Marcos Aurélio Vasconcelos Freitas & Neilton Fidelis da Silva & Franklin Rocha de Azevedo Filho, 2019. "Sustainable Groundwater Exploitation Aiming at the Reduction of Water Vulnerability in the Brazilian Semi-Arid Region," Energies, MDPI, vol. 12(5), pages 1-20, March.
    2. Angelis-Dimakis, Athanasios & Biberacher, Markus & Dominguez, Javier & Fiorese, Giulia & Gadocha, Sabine & Gnansounou, Edgard & Guariso, Giorgio & Kartalidis, Avraam & Panichelli, Luis & Pinedo, Irene, 2011. "Methods and tools to evaluate the availability of renewable energy sources," Renewable and Sustainable Energy Reviews, Elsevier, vol. 15(2), pages 1182-1200, February.
    3. Horner, Robert M. & Clark, Corrie E., 2013. "Characterizing variability and reducing uncertainty in estimates of solar land use energy intensity," Renewable and Sustainable Energy Reviews, Elsevier, vol. 23(C), pages 129-137.
    4. Maxwell C. Wilson & Xiao-Yan Li & Yu-Jun Ma & Andrew T. Smith & Jianguo Wu, 2017. "A Review of the Economic, Social, and Environmental Impacts of China’s South–North Water Transfer Project: A Sustainability Perspective," Sustainability, MDPI, vol. 9(8), pages 1-11, August.
    5. Carstens, Danielle Denes dos Santos & Cunha, Sieglinde Kindl da, 2019. "Challenges and opportunities for the growth of solar photovoltaic energy in Brazil," Energy Policy, Elsevier, vol. 125(C), pages 396-404.
    6. Martins, F.R. & Pereira, E.B. & Silva, S.A.B. & Abreu, S.L. & Colle, Sergio, 2008. "Solar energy scenarios in Brazil, Part one: Resource assessment," Energy Policy, Elsevier, vol. 36(8), pages 2843-2854, August.
    7. Zhang, Jianyuan & Zhao, Li & Deng, Shuai & Xu, Weicong & Zhang, Ying, 2017. "A critical review of the models used to estimate solar radiation," Renewable and Sustainable Energy Reviews, Elsevier, vol. 70(C), pages 314-329.
    8. Hélio Henrique Cunha Pinheiro & Neilton Fidélis da Silva & David Alves Castelo Branco & Márcio Giannini Pereira, 2020. "Photovoltaic Solar Systems in Multi-Headquarter Institutions: A Technical Implementation in Northeastern Brazil," Energies, MDPI, vol. 13(10), pages 1-28, May.
    9. Michael Webber & Britt Crow-Miller & Sarah Rogers, 2017. "The South–North Water Transfer Project: remaking the geography of China," Regional Studies, Taylor & Francis Journals, vol. 51(3), pages 370-382, March.
    10. Martins, F.R. & Rüther, R. & Pereira, E.B. & Abreu, S.L., 2008. "Solar energy scenarios in Brazil. Part two: Photovoltaics applications," Energy Policy, Elsevier, vol. 36(8), pages 2855-2867, August.
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