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The climate change potential effects on the run-of-river plant and the environmental and economic dimensions of sustainability

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  • Michels-Brito, Adriane
  • Rodriguez, Daniel Andrés
  • Cruz Junior, Wellington Luís
  • Nildo de Souza Vianna, João

Abstract

In this work, we evaluate the environmental and economic sustainability dimensions of a run-of-river hydroelectric plant operation regarding environmental impacts and potential direct and indirect effects of climate change. Results suggest the generation of a vicious cycle of clean generation and dirty generation, enhanced by a positive feedback with climate change impacts. This cycle is triggered by the tradeoffs between environmental protection policies and the socioeconomic pressure for energy production, embedded in an energy production matrix that prioritizes fossil fuel-based production as responses to peak energy demand. The climate projections were generated by the Eta Regional Climate Model from the National Institute for Space Research. They were forced by the atmospheric simulations of the Interdisciplinary Climate Research Model (MIROC5) and the Hadley Center Global Environmental Model (HadGEM2-ES) under the RCP4.5 and RCP 8.5 emission scenarios. The MHD-INPE Distributed Hydrological Model was used to generate streamflow projections. Environmental impacts were assessed by accounting for carbon stock and sequestration, greenhouse gas emissions, and energy cost. Climate projections indicated reduced precipitation and increased temperature. The streamflow will present progressively reductions of the flow volume until the end of the century, which undermines the plant's ability to ensure firm energy and induce thermal plants' activation to supply the demand. This activation will lead to an increase in greenhouse gas emissions and an increase in the price of energy, which may lower the benefits in carbon stock associated with a run-of-river hydropower plant and negatively influence the reduction commitments assumed by Brazil.

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  • Michels-Brito, Adriane & Rodriguez, Daniel Andrés & Cruz Junior, Wellington Luís & Nildo de Souza Vianna, João, 2021. "The climate change potential effects on the run-of-river plant and the environmental and economic dimensions of sustainability," Renewable and Sustainable Energy Reviews, Elsevier, vol. 147(C).
  • Handle: RePEc:eee:rensus:v:147:y:2021:i:c:s1364032121005256
    DOI: 10.1016/j.rser.2021.111238
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    1. Allison Thomson & Katherine Calvin & Steven Smith & G. Kyle & April Volke & Pralit Patel & Sabrina Delgado-Arias & Ben Bond-Lamberty & Marshall Wise & Leon Clarke & James Edmonds, 2011. "RCP4.5: a pathway for stabilization of radiative forcing by 2100," Climatic Change, Springer, vol. 109(1), pages 77-94, November.
    2. Renato M Coutinho & Roberto A Kraenkel & Paulo I Prado, 2015. "Catastrophic Regime Shift in Water Reservoirs and São Paulo Water Supply Crisis," PLOS ONE, Public Library of Science, vol. 10(9), pages 1-14, September.
    3. Almeida Prado, Fernando & Athayde, Simone & Mossa, Joann & Bohlman, Stephanie & Leite, Flavia & Oliver-Smith, Anthony, 2016. "How much is enough? An integrated examination of energy security, economic growth and climate change related to hydropower expansion in Brazil," Renewable and Sustainable Energy Reviews, Elsevier, vol. 53(C), pages 1132-1136.
    4. João Paulo Lyra Fialho Brêda & Rodrigo Cauduro Dias Paiva & Walter Collischon & Juan Martín Bravo & Vinicius Alencar Siqueira & Elisa Bolzan Steinke, 2020. "Climate change impacts on South American water balance from a continental-scale hydrological model driven by CMIP5 projections," Climatic Change, Springer, vol. 159(4), pages 503-522, April.
    5. Schmidt, Johannes & Cancella, Rafael & Pereira, Amaro O., 2016. "An optimal mix of solar PV, wind and hydro power for a low-carbon electricity supply in Brazil," Renewable Energy, Elsevier, vol. 85(C), pages 137-147.
    6. J. Júnior & J. Tomasella & D. Rodriguez, 2015. "Impacts of future climatic and land cover changes on the hydrological regime of the Madeira River basin," Climatic Change, Springer, vol. 129(1), pages 117-129, March.
    7. Guoyi Zhou & Xiaohua Wei & Xiuzhi Chen & Ping Zhou & Xiaodong Liu & Yin Xiao & Ge Sun & David F. Scott & Shuyidan Zhou & Liusheng Han & Yongxian Su, 2015. "Global pattern for the effect of climate and land cover on water yield," Nature Communications, Nature, vol. 6(1), pages 1-9, May.
    8. Raadal, Hanne Lerche & Gagnon, Luc & Modahl, Ingunn Saur & Hanssen, Ole Jørgen, 2011. "Life cycle greenhouse gas (GHG) emissions from the generation of wind and hydro power," Renewable and Sustainable Energy Reviews, Elsevier, vol. 15(7), pages 3417-3422, September.
    9. Okot, David Kilama, 2013. "Review of small hydropower technology," Renewable and Sustainable Energy Reviews, Elsevier, vol. 26(C), pages 515-520.
    10. Singh, Vineet Kumar & Singal, S.K., 2017. "Operation of hydro power plants-a review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 69(C), pages 610-619.
    11. Zhang, Jin & Xu, Linyu & Li, Xiaojin, 2015. "Review on the externalities of hydropower: A comparison between large and small hydropower projects in Tibet based on the CO2 equivalent," Renewable and Sustainable Energy Reviews, Elsevier, vol. 50(C), pages 176-185.
    12. Demarty, M. & Bastien, J., 2011. "GHG emissions from hydroelectric reservoirs in tropical and equatorial regions: Review of 20 years of CH4 emission measurements," Energy Policy, Elsevier, vol. 39(7), pages 4197-4206, July.
    13. Juárez, Alberto Aquino & Araújo, Alex Maurício & Rohatgi, Janardan Singh & de Oliveira Filho, Oyama Douglas Queiroz, 2014. "Development of the wind power in Brazil: Political, social and technical issues," Renewable and Sustainable Energy Reviews, Elsevier, vol. 39(C), pages 828-834.
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