Publicado

2026-04-14

Estrategia participativa multicriterio para evaluar modelos energéticos sostenibles en comunidades aisladas

A Participatory Multi-Criteria Framework for Evaluating Sustainable Energy Models in Isolated Communities

DOI:

https://doi.org/10.15446/sicel.v12.121787

Palabras clave:

Energy communities, rural electrification, Renewable energy, multi-criteria assessment, sustainability, non-interconnected areas (es)
English (en)

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Autores/as

  • Andres David Vides Prado Universidad Tecnologica de Pereira 0000-0002-0435-9331
  • Juan Mora-Flórez Universidad Tecnológica de Pereira
  • Bruno Domenech Universidad Politécnica de Cataluña
  • Laia Ferrer-Marti Universidad Politécnica de Cataluña

El acceso a la energ\'ia en las zonas no interconectadas de Colombia sigue siendo una deuda estructural, especialmente en regiones como La Guajira, donde persisten bajos niveles de cobertura eléctrica. Los modelos tradicionales de electrificación rural han priorizado soluciones técnicas sin considerar los modelos de gesti\'on que garantizan la sostenibilidad de los proyectos. En respuesta a esta problem\'atica, el presente artículo propone una metodología de evaluaci\'on multicriterio participativa, orientada al diseño y priorización de comunidades energéticas sostenibles, integrando dimensiones técnicas, sociales, económicas, ambientales e institucionales. La metodología se estructura en cinco etapas e incorporan herramientas de simulación técnica y métodos de decisión multicriterio como la programación compromiso, permitiendo la comparación de combinaciones entre alternativas tecnológicas y modelos de gestión. Los resultados confirman que la mejor solución varía según el contexto comunitario y que las decisiones técnicas y organizativas deben tomarse de forma conjunta para garantizar la sostenibilidad a largo plazo. Así mismo, estos resultados indican que que para las tecnologías más complejas, el modelo de gestión privado obtiene mejor desempeño, mientras que para opciones más convencionales, los modelos comunitarios resultan más adecuados. Esta metodología aporta una herramienta replicable para diseñar comunidades energéticas adaptadas y sostenibles en territorios vulnerables.

Energy access in Colombia's non-interconnected areas remains a significant challenge, particularly in regions such as La Guajira, where low electricity coverage persists. Traditional rural electrification models have prioritised technical solutions without considering management models that guarantee project sustainability. In response to this problem, this article proposes a participatory multi-criteria evaluation methodology for designing and prioritising sustainable energy communities, integrating technical, social, economic, environmental, and institutional dimensions. The methodology is structured into five stages and incorporates technical simulation tools and multi-criteria decision-making methods, such as compromise programming, allowing for the comparison of combinations of technological alternatives and management models. The results confirm that the best solution varies depending on the community context and that technical and organisational decisions must be made jointly to ensure long-term sustainability. The results indicate that for more complex technologies, the private management model performs better; however, for other options, community models are more suitable. This methodology provides a replicable tool for designing adapted and sustainable energy communities in vulnerable territories.

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Citas

[1] Unidad de Planeación Minero Energética (UPME), "Documento metodológico de cálculo del Indice de cobertura de energía eléctrica, 2018". Agosto de 2022. Disponible: https://www1.upme.gov.co/siel/PIEC/2019-23/Documento_Metodologico_ICEE_2018_Sep152022.pdf.

[2] Departamento Administrativo Nacional de Estadística (DANE), "Censo nacional de población y vivienda 2018", Gobierno nacional de Colombia, 2018. Disponible: https://www.dane.gov.co/index.php/estadisticas-por-tema/demografia-y-poblacion/censo-nacional-de-poblacion-y-vivenda-2018

[3] Ministerio de Minas y Energía, "Hoja de Ruta para la Transición Energética Justa de Colombia", Bogotá, D.C., Octubre de 2024. Disponible: https://minenergia.gov.co/documents/13272/Hoja_de_ruta_transicion_energetica_justa_TEJ_2025.pdf.

[4] C. S. Deshwar, R. Sharma, A. K. Gupta & M. S. Singh, "Assessment and Scope of Decentralised Power Generation Using Renewable Energy Resources", en Proc. 4th International Conference: Innovative Advancement in Engineering & Technology (IAET), febrero de 2020. Disponible: https://doi.org/10.2139/ssrn.3554854

[5] A. S. Duran & F. G. Sahinyazan, "An analysis of renewable mini-grid projects for rural electrification", Socio-Economic Planning Sciences, vol. 77, p. 100999, 2021. Disponible: https://doi.org/10.1016/j.seps.2020.100999

[6] E. I. C. Zebra, H. J. van der Windt, G. Nhumaio & A. Faaij, "A review of hybrid renewable energy systems in mini-grids for off-grid electrification in developing countries", Renewable and Sustainable Energy Reviews, 2021. Disponible: https://doi.org/10.1016/J.RSER.2021.111036

[7] A. Vides-Prado, J. Mora-Flórez & S. Pérez-Londoño, "Group assessment for the selection of sustainable small-scale power supply projects: A study case from northern Colombia", Journal of Cleaner Production, vol. 425, p. 138834, 2023. Disponible: https://doi.org/10.1016/j.jclepro.2023.138834

[8] A. Leduchowicz-Municio, A. López-Gozález, B. Domenech, L. Ferrer-Marti, M. E. M. Udaeta & A. L. V. Gimenes, "Last-mile rural electrification: Lessons learned from universalization programs in Brazil and Venezuela", Energy Policy, vol. 167, p. 113080, 2022. Disponible: https://doi.org/10.1016/j.enpol.2022.113080.

[9] C. M. M. Rocha, J. D. P. Ortiz, and N. A. R. Ibanez, "A diffuse analysis based on analytical processes to prioritize barriers in the development of renewable energy technologies in alignment with the united nations sustainable development goals: evidence from Guajira/Colombia", International Journal of Energy Economics and Policy, vol. 13, no. 4, pp. 481-495, 2023. Disponible: https://doi.org/10.32479/ijeep.

[10] L. Rodriguez, "Sostenibilidad energética y social en Colombia: un estudio de caso en zonas no interconectadas", Simposio Internacional sobre la Calidad de la Energía Eléctrica SICEL, vol. 11, 2024. Disponible: https://doi.org/10.15446/sicel.v11.110053

[11] M. Juanpera, L. Ferrer-Marti & R. Pastor, "Multi-stage optimization of rural electrification planning at regional level considering multiple criteria. Case study in Nigeria", Applied Energy, vol. 314, p. 118926, 2022. Disponible: https://doi.org/10.1016/j.apenergy.2022.118926.

[12] B. Akbas, A. S. Kocaman, D. Nock & P. A. Trotter, "Rural electrification: An overview of optimization methods", Renewable and Sustainable Energy Reviews, vol. 156, p. 111935, marzo de 2022. Disponible: https://doi.org/10.1016/j.rser.2021.111935

[13] L. Hellqvist, "Do public-private partnerships benefit the end-user in rural energy provision? A Case Study of Bangladesh Solar Home Systems Programme," in 2023 6th International Conference on Renewable Energy for Developing Countries (REDEC), pp. 1-6, 2023. Disponible: 10.1109/REDEC58286.2023.10208173.

[14] D. Oliveros Lugo, "Análisis de los aspectos sociales y normativos para la implementación de comunidades energéticas en Colombia: visión comparada España y Alemania", Universidad Externado de Colombia, 2024. Disponible: https://bdigital.uexternado.edu.co/handle/001/26493

[15] D. F. Gómez-Hernández, B. Domenech, M. Juanpera & L. Ferrer-Marti, "Ranking projects in regional electrification plans considering technical and social criteria. Case study in Mexico", Energy for Sustainable Development, vol. 77, p. 101336, 2023. Disponible: https://doi.org/10.1016/j.esd.2023.101336

[16] M. R. Elkadeem, A. Younes, S. W. Sharshir, P. E. Campana & S. Wang, "Sustainable siting and design optimization of hybrid renewable energy system: A geospatial multi-criteria analysis", Applied Energy, vol. 295, p. 117071, 2021. Disponible: https://doi.org/10.1016/j.apenergy.2021.117071

[17] G. Zheng & X. Wang, "The comprehensive evaluation of renewable energy system schemes in tourist resorts based on VIKOR method", Energy, vol. 193, p. 116676, 2020. Disponible: https://doi.org/10.1016/j.energy.2019.116676.

+1

[18] P. Rani, A. R. Mishra, K. R. Pardasani, A. Mardani, H. Liao & D. Streimikiene, "A novel VIKOR approach based on entropy and divergence measures of Pythagorean fuzzy sets to evaluate renewable energy technologies in India", Journal of Cleaner Production, vol. 238, p. 117936, 2019. Disponible: https://doi.org/10.1016/j.jclepro.2019.117936

[19] C. Romero, M. Tamiz & D. F. Jones, "Goal programming, compromise programming and reference point method formulations: linkages and utility interpretations", Journal of the Operational Research Society, vol. 49, no. 9, pp. 986-991, 1998. Disponible: https://doi.org/10.1057/palgrave.jors.2600611

[20] W. Chen, M. M. Wiecek & J. Zhang, "Quality utility: a compromise programming approach to robust design", International Design Engineering Technical Conferences and Computers and Information in Engineering Conference, vol. 80326, p. V002T02A032, septiembre de 1998. Disponible: https://doi.org/10.1115/DETC98/DAC-5601

[21] A. Hashimoto & D. A. Wu, "A DEA-compromise programming model for comprehensive ranking, Journal of the Operations Research Society of Japan, vol. 47, no. 2, pp. 73-81, 2004.

[22] L. Diaz-Balteiro & C. Romero, "Sustainability of forest management plans: a discrete goal programming approach", Journal of Environmental Management, vol. 71, no. 4, pp. 351-359, 2004. Disponible: https://doi.org/10.1016/j.jenvman.2004.04.001

[23] A. Ponsich, B. Domenech, L. Ferrer-Marti, M. Juanpera, & R. Pastor, "A multi-objective optimization approach for the design of stand-alone electrification systems based on renewable energies". Expert systems with applications, vol. 199, p. 116939, 2022. Disponible: https://doi.org/10.1016/j.eswa.2022.116939

[24] Superintendencia de servicios públicos (Superservicios). "Informe nacional de coberturas de los servicios públicos 2023 2024. Gobierno nacional de Colombia