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Methodology for Analysing the Social Cost of Energy (SCOE) for a floating photovoltaic plant (FPV) in Spain

I. Robalo-Cabrera, A. Alcayde, A. Filgueira-Vizoso,
T. Guillén-Díaz, F.G. Montoya, L. Castro-Santos

 

2024/07/20

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Abstract

The growing need of the global society to harness renewable resources has resulted in a heightened curiosity to adopt innovative technologies in novel settings. An illustration of this phenomenon can be seen in offshore floating solar power facilities (FPV). As of August 2020, cumulative installed floating solar PV capacity was over 2 GW in 338 active projects and in 35 countries worldwide [1]. The rising interest in FPV is boosted by its decreasing LCOE (Levelized Cost of Energy), which refers to the estimated revenue required to build and operate a generator over a specified cost recovery period [2], as records indicate that FPV could reach competitive prices of 0.05 USD/kWh by 2030 and 0.04 USD/kWh by 2050 [3] as cited in [1]. The aim of the paper is to introduce a methodology developed to evaluate the societal consequences and externalities linked with the implementation of a floating photovoltaic plant in Spain, specifically in a region in north-western Spain. The employed methodology is based in analysing the Social Cost of Energy (SCOE), which integrates a multifaceted approach. It combines economic valuation techniques, environmental impact assessments, and social cost-benefit analysis for the quantification of the holistic impact of the OFV project. The findings highlight the significance of considering social costs alongside traditional economic metrics when assessing renewable energy projects such as floating photovoltaic plants. In conclusion, this research underscores the necessity of incorporating social cost considerations into energy policy and decision-making processes to ensure the achievement of sustainable and socially responsible energy transitions in Spain.

 

Published in: Renewable Energies, Environment & Power Quality Journal (REE&PQJ), Vol. 2
Pages: 187-192 Date of Publication: 2024/07/20
ISSN: 3020-531 X Date of Current Version: 2024/04/15
REF: 379-24 Issue Date: July 2024
DOI:10.24084/reepqj24.379 Publisher: EA4EPQ

Authors and affiliations

I. Robalo-Cabrera(1), A. Alcayde(1), A. Filgueira-Vizoso(2),T. Guillén-Díaz(3), F.G. Montoya(1), L. Castro-Santos(2)

1. Universidad de Almería, Escuela Superior de Ingeniería, La Cañada de San Urbano, 04120, Almería, Spain

2. Universidade da Coruña, Campus Industrial de Ferrol, Centro de Investigación en Tecnoloxías Navais e Industriais (CITENI), Departamento de Enxeñaría Naval e Industrial, Escola Politécnica de Enxeñaría de Ferrol, Esteiro, 15471 Ferrol, Spain

3. Universidad Adolfo Ibáñez, Facultad de Ingeniería y Ciencias, Chile

Key words

Social Cost of Energy, Social Impact, Sustainable Development, Methodological Framework, Floating Photovoltaic.

References

[1] M. for E. T. and the D. Challenge, “Roadmap Offshore Wind and Marine Energy in Spain,” vol. 53, no. 9, p. 124.

[2] U. Energy Information Administration, “Levelized Costs of New Generation Resources in the Annual Energy Outlook 2022,” 2022.

[3] E. Bellini, “pv magazine - Photovoltaics Markets and Technology.” Accessed: Apr. 12, 2024. [Online]. Available: http://www.pv-magazine.com/2020/12/10/offshore-floating-pv-mayreach-maturity-in-2030

[4] L. Essak and A. Ghosh, “Floating Photovoltaics: A Review,” Clean Technol., vol. 4, no. 3, pp. 752–769, 2022, doi: 10.3390/cleantechnol4030046.

[5] Z. Gao et al., Offshore renewable energy, vol. 2. 2015. doi: 10.1080/14486563.2014.993350.

[6] D. F. Silalahi and A. Blakers, “Global Atlas of Marine Floating Solar PV Potential,” Solar, vol. 3, no. 3, pp. 416–433, 2023, doi: 10.3390/solar3030023.

[7] S. Gadzanku, H. Mirletz, N. Lee, J. Daw, and A. Warren, “Benefits and critical knowledge gaps in determining the role of floating photovoltaics in the energy-water-food nexus,” Sustain., vol. 13, no. 8, pp. 1–17, 2021, doi: 10.3390/su13084317.

[8] M. López, F. Soto, and Z. A. Hernández, “Assessment of the potential of floating solar photovoltaic panels in bodies of water in mainland Spain,” J. Clean. Prod., vol. 340, 2022, doi: 10.1016/j.jclepro.2022.130752.

[9] Boletín Oficial del Estado, Real Decreto 363/2017, de 8 de abril, por el que se establece un marco para la ordenación del espacio marítimo. 2017, pp. 28802–28810.

[10] European Union, DIRECTIVA 2014/89/UE DEL PARLAMENTO EUROPEO Y DEL CONSEJO de 23 de julio de 2014 por la que se establece un marco para la ordenación del espacio marítimo. 2014, pp. 135–145.

 

 
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