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Floating PV system as an alternative pathway to the amazon dam underproduction

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  • Sulaeman, Samer
  • Brown, Erik
  • Quispe-Abad, Raul
  • Müller, Norbert

Abstract

With increasing electric demand and the continued underproduction of existing dams and the environmental and social concerns of traditional hydropower dam expansion in the Amazon region, alternative power sources are needed to meet future power needs. Recently, large-scale deployment of photovoltaic (PV) systems has gained more interest globally, mainly because of the improved technology and rapid price decrease. Although solar power in Brazil makes up a small percentage of its generation mix, large-scale deployment could potentially be one of the promising solutions for offsetting dams' underproduction. This work evaluates the benefits of adding floating PV (FPV) systems on system adequacy. FPV systems are integrated alongside existing dams to enhance the existing power sources and provide an alternative pathway to meet the increasing power demand without the need for more dams. System adequacy is evaluated with the current production of dams and the required capacities of FPV systems to compensate for the current underproduction of dams. Furthermore, the correlation between PV output and system load is evaluated, and the environmental and social concerns associated with dam expansion in the Amazon basin are briefly discussed. The results indicate that the investment toward installing FPV systems on the dams’ reservoirs leads to a significant improvement to the overall system reliability, minimize load curtailment, and could potentially add more flexibility to the operator to dispatch power generated by hydropower plants during peak demands.

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  • Sulaeman, Samer & Brown, Erik & Quispe-Abad, Raul & Müller, Norbert, 2021. "Floating PV system as an alternative pathway to the amazon dam underproduction," Renewable and Sustainable Energy Reviews, Elsevier, vol. 135(C).
  • Handle: RePEc:eee:rensus:v:135:y:2021:i:c:s1364032120303737
    DOI: 10.1016/j.rser.2020.110082
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    1. Cazzaniga, R. & Cicu, M. & Rosa-Clot, M. & Rosa-Clot, P. & Tina, G.M. & Ventura, C., 2018. "Floating photovoltaic plants: Performance analysis and design solutions," Renewable and Sustainable Energy Reviews, Elsevier, vol. 81(P2), pages 1730-1741.
    2. Philip Fearnside, 2013. "Carbon credit for hydroelectric dams as a source of greenhouse-gas emissions: the example of Brazil’s Teles Pires Dam," Mitigation and Adaptation Strategies for Global Change, Springer, vol. 18(5), pages 691-699, June.
    3. Chaurey, Akanksha & Kandpal, Tara Chandra, 2010. "Assessment and evaluation of PV based decentralized rural electrification: An overview," Renewable and Sustainable Energy Reviews, Elsevier, vol. 14(8), pages 2266-2278, October.
    4. Sahu, Alok & Yadav, Neha & Sudhakar, K., 2016. "Floating photovoltaic power plant: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 66(C), pages 815-824.
    5. Sternberg, R., 2008. "Hydropower: Dimensions of social and environmental coexistence," Renewable and Sustainable Energy Reviews, Elsevier, vol. 12(6), pages 1588-1621, August.
    6. Borges Neto, M.R. & Carvalho, P.C.M. & Carioca, J.O.B. & Canafístula, F.J.F., 2010. "Biogas/photovoltaic hybrid power system for decentralized energy supply of rural areas," Energy Policy, Elsevier, vol. 38(8), pages 4497-4506, August.
    7. Zhou, Yanlai & Chang, Fi-John & Chang, Li-Chiu & Lee, Wei-De & Huang, Angela & Xu, Chong-Yu & Guo, Shenglian, 2020. "An advanced complementary scheme of floating photovoltaic and hydropower generation flourishing water-food-energy nexus synergies," Applied Energy, Elsevier, vol. 275(C).
    8. Philip Fearnside, 2015. "Tropical hydropower in the clean development mechanism: Brazil’s Santo Antônio Dam as an example of the need for change," Climatic Change, Springer, vol. 131(4), pages 575-589, August.
    9. Holdermann, Claudius & Kissel, Johannes & Beigel, Jürgen, 2014. "Distributed photovoltaic generation in Brazil: An economic viability analysis of small-scale photovoltaic systems in the residential and commercial sectors," Energy Policy, Elsevier, vol. 67(C), pages 612-617.
    10. Ranjbaran, Parisa & Yousefi, Hossein & Gharehpetian, G.B. & Astaraei, Fatemeh Razi, 2019. "A review on floating photovoltaic (FPV) power generation units," Renewable and Sustainable Energy Reviews, Elsevier, vol. 110(C), pages 332-347.
    11. 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.
    12. Soito, João Leonardo da Silva & Freitas, Marcos Aurélio Vasconcelos, 2011. "Amazon and the expansion of hydropower in Brazil: Vulnerability, impacts and possibilities for adaptation to global climate change," Renewable and Sustainable Energy Reviews, Elsevier, vol. 15(6), pages 3165-3177, August.
    13. Italo Sampaio Rodrigues & Geraldo Luis Bezerra Ramalho & Pedro Henrique Augusto Medeiros, 2020. "Potential of floating photovoltaic plant in a tropical reservoir in Brazil," Journal of Environmental Planning and Management, Taylor & Francis Journals, vol. 63(13), pages 2334-2356, November.
    14. Bilgili, Mehmet & Ozbek, Arif & Sahin, Besir & Kahraman, Ali, 2015. "An overview of renewable electric power capacity and progress in new technologies in the world," Renewable and Sustainable Energy Reviews, Elsevier, vol. 49(C), pages 323-334.
    15. Corrêa da Silva, Rodrigo & de Marchi Neto, Ismael & Silva Seifert, Stephan, 2016. "Electricity supply security and the future role of renewable energy sources in Brazil," Renewable and Sustainable Energy Reviews, Elsevier, vol. 59(C), pages 328-341.
    16. Silva, Sergio B. & de Oliveira, Marco A.G. & Severino, Mauro M., 2010. "Economic evaluation and optimization of a photovoltaic-fuel cell-batteries hybrid system for use in the Brazilian Amazon," Energy Policy, Elsevier, vol. 38(11), pages 6713-6723, November.
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    7. Moraes, Camile A. & Valadão, Giovana F. & Renato, Natalia S. & Botelho, Daniel F. & Oliveira, Augusto C. L. de & Aleman, Catariny C. & Cunha, Fernando F., 2022. "Floating photovoltaic plants as an electricity supply option in the Tocantins-Araguaia basin," Renewable Energy, Elsevier, vol. 193(C), pages 264-277.
    8. Muñoz-Cerón, Emilio & Osorio-Aravena, Juan Carlos & Rodríguez-Segura, Francisco Javier & Frolova, Marina & Ruano-Quesada, Antonio, 2023. "Floating photovoltaics systems on water irrigation ponds: Technical potential and multi-benefits analysis," Energy, Elsevier, vol. 271(C).

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