Environmental and Social Impact of the Construction and Operation of a Solar Photovoltaic Power Plant in Mapulanguene, Maputo Province, Mozambique

Autores/as

Palabras clave:

clean energy, generation potential, Solar photovoltaic power plants, energy sustainability

Resumen

This study aims to evaluate the environmental and social impact resulting from the construction and operation of the Mapulanguene Solar Photovoltaic Power Plant, Magude District, Maputo Province. Mozambique, with the objective of assessing its technical, economic and socio-environmental sustainability. With an installed capacity of 100 kWp, the plant aims to contribute significantly to increasing the supply of clean energy in Mozambique's national electricity system. The research followed a mixed methodological approach, combining qualitative and quantitative techniques, supported by Geographic Information System tools, energy modeling, and structured interviews with strategic stakeholders, including Eletricidade de Moçambique, the Energy Fund, the Ministry of Mineral Resources and Energy, engineering companies, and local communities. The key variables of the research were operationalized, including: technical feasibility, technological suitability, operational efficiency, energy productivity, integration into the national electricity grid, economic feasibility, and the costs and revenues associated with the plant's operation. At the same time, the effects on the local energy system were analyzed, especially with regard to the population's access to clean energy, improved grid stability, and increased energy coverage. The results show a high degree of convergence with the objectives of the Mozambican Government's Strategic Plan for the Energy Sector. The Mapulanguene solar power plant is technically feasible, economically sustainable, and socially beneficial.

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Citas

Aguay-Saquicaray, D.C. (2024). Evaluación de la eficiencia energética de sistema de energía solar fotovoltaica en diferentes condiciones climáticas. MQRinvestigar, 8(3), 4993-5016. https://doi.org/10.56048/MQR20225.8.3.2024.4993-5016

Amoroso, F., Hidalgo-León, R., Muñoz, K., Urquizo, J., Singh, P., & Soriano, G. (2023). Techno-economic assessment of PV power systems to power a drinking water treatment plant for an on-grid small rural community. Energies, 16(4). https://doi.org/10.3390/en16042027

Bravo, J.M., & Gámez, M.R. (2024). Factibilidad para la electrificación rural con tecnología fotovoltaica. 593 Digital Publisher CEIT, 9(3), 1139-1153. https://doi.org/10.33386/593dp.2024.3.2490

Camarena, C., & Nahui, J. (2024). Energía solar como agente para la descarbonización de la matriz energética: una propuesta para la región Lambayeque (Perú). South Sustentainability, 5(1). https://doi.org/10.21142/SS-0501-2024-e093

Chichango, F., Cristóvão, J., Nhambiu, J., Cumbe, F., & Gabriel, G. (2024). Análise da eficiência energética de sistemas de aquecimento solar de água com armazenamento de calor sensível em Moçambique. Research, Society and Development, 13(9), 1-18. http://dx.doi.org/10.33448/rsd-v13i9.46865

Cuenca, A.D., Oña, C.E., Suquillo, I.F., & Miniguano, H.S. (2023). Metodología de diseños de sistemas aislados de energía solar fotovoltaica para áreas rurales en Ecuador. Revista Técnica Energía, 20(1), 43-51. https://doi.org/10.37116/revistaenergia.v20n1.2023.537

Dualia Chamo, B., de Carvalho Choé, O. F., Veremachi, A. & Marques, M.M. (2024). Produção de alimentos sustentável: a contribuição da energia solar fotovoltaica para a piscicultura no Distrito De Bilene, Província de Gaza, Moçambique. Revista Multidisciplinar do Nordeste Mineiro, 10, 1-25. https://remunom.ojsbr.com/multidisciplinar/article/view/3019/3179

Gómez M.C., Gálvez, D. C., & Mata, L. (2025). Análisis de los costos de generación de energía solar fotovoltaica hacia el año 2050. Revista Espacios, 46(2), 95-109. https://doi.org/10.48082/espacios-a25v46n02p08

Gonçalves Fortes, A., Fernando Beirão, H.A., & Adelino Mamudo, A.A. (2022). Complementaridade hidrossolar em Moçambique e as questões de sustentabilidade energética. Revista Meio Ambiente e Sustentabilidade, 11(22), 101-113. https://doi.org/10.22292/mas.v11i21.994

Guamán, A. F., & Sánchez, L. V. (2025). Análisis de implementación de paneles solares y su beneficio económico en las instituciones públicas y privadas de la ciudad de Riobamba. Código Científico Revista de Investigación, 6(E1), 726–747. https://doi.org/10.55813/gaea/ccri/v6/nE1/715

Hilario, J.L., Bardales, R.P., & Bollet, F. (2025). Energía solar y sostenibilidad económica en la agricultura: una revisión sistemática sobre sus implicaciones en la mejora de procesos. Revista InveCom, 5(4). https://doi.org/10.5281/zenodo.15009195

Inca, G. S., Villalta, D. F., Cabrera, H. D., Cabrera, D.F., & Bautista, R. C. (2023). Evaluación de la actualidad de los sistemas fotovoltaicos en Ecuador: avances, desafíos y perspectivas. Ciencia Latina Revista Científica Multidisciplinar, 7(3), 9493-9509. https://doi.org/10.37811/cl_rcm.v7i3.6835

Institute of Electrical and Electronic Engineers (IEEE). (2018). 1547. IEEE Standard for Interconnecting Distributed Resources with Electric Power Systems, Piscataway. https://standards.ieee.org/ieee/1547/5915/

International Electrotechnical Commission (IEC). (2014). IEC 62116:2014. Utility-interconnected photovoltaic inverters. Test procedure of islanding prevention measures. https://webstore.iec.ch/en/publication/6479

International Electrotechnical Commission (IEC). (2020). IEC 62109:2020. Safety of power converters for use in photovoltaic power systems. https://webstore.iec.ch/en/publication/6470

International Electrotechnical Commission (IEC). (2024). IEC 61727:2024. Photovoltaic (PV) systems. Characteristics of the utility interface. https://webstore.iec.ch/en/publication/5736

International Electrotechnical Commission (IEC). (2013). IEC 61427-1:2013. Secondary cells and batteries for renewable energy storage. General requirements and methods of test. Part 1: Photovoltaic off-grid application. https://webstore.iec.ch/en/publication/5449

International Electrotechnical Commission. (IEC). (2013). IEC 60695-11-10:2013. Fire hazard testing - Part 11-10: Test flames - 50 W horizontal and vertical flame test methods. https://webstore.iec.ch/en/publication/2938

International Electrotechnical Commission. (IEC). (2022). IEC 62619:2022. Secondary cells and batteries containing alkaline or other non-acid electrolytes – safety requirements for secondary lithium cells and batteries, for use in industrial applications. https://webstore.iec.ch/en/publication/64073

International Electrotechnical Commission. (IEC). (2011). TR 61000-3-15:2011. Electromagnetic compatibility (EMC). Part 3-15: Limits – Assessment of low frequency electromagnetic immunity and emission requirements for dispersed generation systems in LV network. https://webstore.iec.ch/en/publication/4148

International Electrotechnical Commission. (IEC). (2020). IEC 60896-21,22A:2020. Formulario de informe de prueba IECEE 60896-21, 22a. https://webstore.iec.ch/en/publication/68186

International Electrotechnical Commission (IEC). (2020). IEC 61701:2020. Módulos fotovoltaicos (PV): Prueba de corrosión por niebla salina. https://webstore.iec.ch/en/publication/59588

International Electrotechnical Commission. (IEC). (2023). IEC 61730-1:2023. Calificación de seguridad de módulos fotovoltaicos (PV) - Parte 1: Requisitos para la construcción. https://webstore.iec.ch/en/publication/59803

International Electrotechnical Commission. (IEC). (2021). 61215-1:2021 Módulos fotovoltaicos terrestres (PV): Calificación de diseño y aprobación de tipo. Parte 1: Requisitos de prueba. https://webstore.iec.ch/en/publication/61345

International Energy Agency (IEA). (2019). World Energy Outlook. https://www.iea.org/reports/world-energy-outlook-2019

International Renewable Energy Agency (IRENA). (2019). Global Energy Transformation. A Roadmap to 2050. https://www.irena.org/-/media/Files/IRENA/Agency/Publication/2019/Apr/IRENA_Global_Energy_Transformation_20 19.pdf

International Organization for Standardization (ISO). (2015). ISO 14001. Sistemas de gestión ambiental: Requisitos con orientación para su uso. https://www.iso.org/obp/ui#iso:std:iso:14001:ed-3:v1:es

International Organization for Standardization (ISO). (2015). ISO 9001. Sistemas de gestión de la calidad — Requisitos. Quality management systems — Requirements. https://www.iso.org/obp/ui/#iso:std:iso:9001:ed-5:v1:es

Master, S.A. & Fathia, V. (2024). Energia solar fotovoltaica: Uma proposta de Planejamento Estratégico sobre a capacidade de geração e perspectivas no desenvolvimento sustentável de Moçambique. Revista Brasileira Multidisciplinar ReBraM, 27(2). https://10.25061/2527-2675/ReBraM/2024.v27i2.1867

Sharma, P., Muni, B., & Sen, D. (2015). Design Parameters of 10kW floating solar power plant. Revista internacional de publicación avanzada en ciencia, ingeniería y tecnología, 2(Special Issue 1), 85-89. https://www.iarjset.com/upload/2015/si/ncree-15/IARJSET%2017%20P127.pdf

Publicado

2025-09-04

Cómo citar

Xavier-Vilanculos, D. F. (2025). Environmental and Social Impact of the Construction and Operation of a Solar Photovoltaic Power Plant in Mapulanguene, Maputo Province, Mozambique. Ciencia & Futuro, 15(3), 284–299. Recuperado a partir de https://revista.ismm.edu.cu/index.php/revistacyf/article/view/2822