Sustainable Energy Planning and Management – SDEWES 2024 Special Issue on transition from coal and modelling approaches
Main Article Content
Abstract
This 45th volume of the International Journal of Sustainable Energy Planning and Management includes papers from the Sustainable Development of Energy, Water and Environmental Systems (SDEWES) conference series held in 2024. A focus area of this special issue is conversion of coal-reliant energy systems in Columbia, Indonesia and Poland. Another focus area is on modelling approaches and the inclusion of decision makers and stakeholders in the process.
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References
[1] Østergaard PA, Duic N. Sustainable energy, water and environmental systems. International Journal of Sustainable Energy Planning and Management 2014;3. https://doi.org/10.5278/ijsepm.2014.3.1.
[2] Østergaard PA, Johannsen RM, Duic N. Sustainable Development using Renewable Energy Systems. International Journal of Sustainable Energy Planning and Management 2020;29. https://doi.org/10.5278/ijsepm.4302.
[3] Seixas J, Østergaard PA, Johannsen RM, Duic N. Energy System Sustainability. International Journal of Sustainable Energy Planning and Management 2021;32:1–4. https://doi.org/10.5278/ijsepm.6850.
[4] Østergaard PA, Johannsen RM, Duic N, Lund H. Sustainable Development of Energy, Water and Environmental Systems and Smart Energy Systems. International Journal of Sustainable Energy Planning and Management 2022;34. https://doi.org/10.54337/ijsepm.7269.
[5] Østergaard PA, Johannsen RM, Duic N, Lund H, Mathiesen BV, Soares I, et al. Sustainable Energy Planning and Management Vol 38. International Journal of Sustainable Energy Planning and Management 2023;38. https://doi.org/10.54337/ijsepm.7812.
[6] Østergaard PA, Lund H, Johannsen RM, Sperling K, Duic N. Ten years of sustainable energy planning and management. International Journal of Sustainable Energy Planning and Management 2024;40:1–7. https://doi.org/10.54337/ijsepm.8360.
[7] Østergaard PA, Duic N. Sustainable Energy Planning and Management with Energy Scenario Modelling, GIS Tools and Demand Projection. International Journal of Sustainable Energy Planning and Management 2024;42:1 – 4. https://doi.org/10.54337/ijsepm.9184.
[8] Infante Cuan JE, et al. Optimal biorefinery design and supply chain for the production of sugarcane bagasse pellets, electricity and bioethanol in Colombia. International Journal of Sustainable Energy Planning and Management 2025;45. https://doi.org/10.54337/ijsepm.9744.
[9] Martínez-Ruiz Y, Micán CA, Manotas-Duque DF. LCOE at Risk in Different Locations in Colombia. International Journal of Sustainable Energy Planning and Management 2025;44. https://doi.org/10.54337/ijsepm.9745.
[10] Gelves JJP, Florez GAD. Methodology to Assess the Implementation of Solar Power Projects1 in Rural Areas Using AHP: a Case Study of Colombia. International Journal of Sustainable Energy Planning and Management 2020;29. https://doi.org/10.5278/ijsepm.3592.
[11] Bastidas-Salamanca M, Rueda-Bayona JG. Pre-feasibility assessment for identifying locations of new offshore wind projects in the Colombian Caribbean. International Journal of Sustainable Energy Planning and Management 2021;32. https://doi.org/10.5278/ijsepm.6710.
[12] Velasquez HI, Orozco CA, Maya JC, Florez-Orrego D, Lopera S. Exergy analysis of the energy consumption in the Colombian energy mix: An insight from its economic sectors and energy resources. International Journal of Sustainable Energy Planning and Management 2019;22:39–60. https://doi.org/10.5278/ijsepm.2552.
[13] al Irsyad MI, Et al. A Strategic Plan for Renewable Energy Transition in a Coal Dependent Region using Participatory Backcasting: The Case of South Kalimantan Province in Indonesia. International Journal of Sustainable Energy Planning and Management 2025. https://doi.org/10.54337/ijsepm.9826.
[14] Fitriani I, al. E. The Optimization of Power Generation Mix To Achieve Net Zero Emission Pathway in Indonesia Without Specific Time Target. Internatiuonal Journal of Sustainable Energy Planning and Management 2024;41. https://doi.org/10.54337/ijsepm.8263.
[15] Sani K, Siallagan M, Putro US, Mangkusubroto K. Indonesia Energy Mix Modelling Using System Dynamics. International Journal of Sustainable Energy Planning and Management 2018;18:29–52. https://doi.org/10.5278/ijsepm.2018.18.3.
[16] Siregar YI. Ranking of energy sources for sustainable electricity generation in Indonesia: A participatory multi-criteria analysis. International Journal of Sustainable Energy Planning and Management 2022;35. https://doi.org/10.54337/ijsepm.7241.
[17] Al Hasibi RA. Multi-objective Analysis of Sustainable Generation Expansion Planning based on Renewable Energy Potential: A case study of Bali Province of Indonesia. International Journal of Sustainable Energy Planning and Management 2021;31. https://doi.org/10.5278/ijsepm.6474.
[18] Gunawan J, Alifia T, Fraser K. Achieving renewable energy targets: The impact of residential solar PV prosumers in Indonesia. International Journal of Sustainable Energy Planning and Management 2021;32. https://doi.org/10.5278/ijsepm.6314.
[19] Damayanti RW, Et al. Drivers of the Sustainability Performance of Induction Stove Conversion Program in Indonesia. International Journal of Sustainable Energy Planning and Management 2024;43. https://doi.org/10.54337/ijsepm.8414.
[20] Putranto LM. Generation expansion planning for high-potential hydropower resources: The case of the Sulawesi electricity system. International Journal of Sustainable Energy Planning and Management 2020;28:37–52. https://doi.org/10.5278/ijsepm.3247.
[21] Setiartiti L, Al Hasibi RA. Low carbon-based energy strategy for transportation sector development. International Journal of Sustainable Energy Planning and Management 2019;19. https://doi.org/10.5278/ijsepm.2019.19.4.
[22] Al Hasibi RA, Pramono Hadi S. An Integrated Renewable Energy System for the Supply of Electricity and Hydrogen Energy for Road Transportation Which Minimizes Greenhouse Gas Emissions. International Journal of Sustainable Energy Planning and Management 2022;35. https://doi.org/10.54337/ijsepm.7039.
[23] Tańczuk M, Et al. System integration of geothermal heat plant in high-temperature district heating system - technical and economic issues. International Journal of Sustainable Energy Planning and Management 2025. https://doi.org/10.54337/ijsepm.9956.
[24] Blumberga A, Zvirbule K. Designing an online interactive national energy and climate policy simulation tool to enhance the policy decision making process. International Journal of Sustainable Energy Planning and Managemen 2025;45. https://doi.org/10.54337/ijsepm.9947.
[25] Matak N, et al. Quadruple Helix Stakeholder view on energy modelling tools for energy transition in African 2025;45. https://doi.org/10.54337/ijsepm.10016.
[26] Dall-Orsoletta A. A review of social aspects integration in system dynamics energy systems models. International Journal of Sustainable Energy Planning and Management 2022;36. https://doi.org/10.54337/ijsepm.7478.
[27] Volkova A, Latõšov E, Mašatin V, Siirde A. Development of a user-friendly mobile app for the national level promotion of the 4th generation district heating. International Journal of Sustainable Energy Planning and Management 2019;20. https://doi.org/10.5278/ijsepm.2019.20.3.
[28] Krog L, Sperling K, Svangren MK, Hvelplund F. Consumer involvement in the transition to 4th generation district heating. International Journal of Sustainable Energy Planning and Management 2020;29. https://doi.org/10.5278/ijsepm.4627.
[29] Lund H, Østergaard PA, Nielsen TB, Werner S, Thorsen JE, Gudmundsson O, et al. Perspectives on fourth and fifth generation district heating. Energy 2021;227:120520. https://doi.org/10.1016/j.energy.2021.120520.
[30] Lund H, Østergaard PA, Chang M, Werner S, Svendsen S, Sorknæs P, et al. The status of 4th generation district heating: Research and results. Energy 2018;164:147–59. https://doi.org/10.1016/j.energy.2018.08.206.
[31] Lund H, Duic N, Østergaard PA, Mathiesen B V. Smart energy systems and 4th generation district heating. Energy 2016;110. https://doi.org/10.1016/j.energy.2016.07.105.
[32] Kuriyan K, Shah N. A combined spatial and technological model for the planning of district energy systems. International Journal of Sustainable Energy Planning and Management 2019;21. https://doi.org/10.5278/ijsepm.2019.21.8.
[33] Gupta K, Ahlgren EO. Analysis of City Energy Systems Modeling Case Studies: A Systematic Review. International Journal of Sustainable Energy Planning and Management 2024;43. https://doi.org/10.54337/ijsepm.9335.
[34] Prina MG, Moser D, Vaccaro R, Sparber W. EPLANopt optimization model based on EnergyPLAN applied at regional level: the future competition on excess electricity production from renewables. International Journal of Sustainable Energy Planning and Management 2020;27. https://doi.org/10.5278/ijsepm.3504.
[35] Lund H, Thellufsen JZ, Østergaard PoulA, Sorknæs P, Skov IR, Mathiesen BV. EnergyPLAN – Advanced Analysis of Smart Energy Systems. Smart Energy 2021:100007. https://doi.org/10.1016/j.segy.2021.100007.
[36] Østergaard PA, Lund H, Thellufsen JZ, Sorknæs P, Mathiesen BV. Review and validation of EnergyPLAN. Renewable and Sustainable Energy Reviews 2022;168. https://doi.org/10.1016/j.rser.2022.112724.
[37] Lund H, Arler F, Østergaard PA, Hvelplund F, Connolly D, Mathiesen BV, et al. Simulation versus optimisation: Theoretical positions in energy system modelling. Energies (Basel) 2017;10:1–17. https://doi.org/10.3390/en10070840.
[38] Østergaard PA, Andersen FM, Kwon PS. Energy systems scenario modelling and long term forecasting of hourly electricity Demand. International Journal of Sustainable Energy Planning and Management 2015;7. https://doi.org/10.5278/ijsepm.2015.7.8.
[39] Zugno M, Morales JM, Madsen H. Decision support tools for electricity retailers, wind power and CHP plants using probabilistic forecasts. International Journal of Sustainable Energy Planning and Management 2015;7:19–36. https://doi.org/10.5278/ijsepm.2015.7.3.
