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Scenario-Based Modelling of Residential Sector Consumption: A Case Study in Latvia Cover

Scenario-Based Modelling of Residential Sector Consumption: A Case Study in Latvia

Open Access
|Jun 2022

References

  1. 1. De Lotto, R., Micciché, C., Venco, E.M., Bonaiti, A., & De Napoli, R. (2022). Energy Communities: Technical, Legislative, Organizational, and Planning Features. Energies 2022, 15 (5), 1731. doi: 10.3390/en15051731.
  2. 2. Walsh, M., Castanie, M., & Giovannini, S. (2020). Community Energy: A Practical Guide to Reclaiming Power. Available at https://www.rescoop.eu/toolbox/community-energy-a-practical-guide-to-reclaiming-power
  3. 3. Ahmadiahangar, R., Baharvandi, A., Rosin, A., Haring, T., Azizi, E., Korotko, T., & Shabbir, N. (2020). Energy storage expansion planning in microgrid. In: 2020 IEEE 14th Int. Conf. Compat. Power Electron. Power Eng. CPEPOWERENG 2020, (pp. 433–437), 8–10 July 2020, Setubal, Portugal. doi: 10.1109/CPEPOWERENG48600.2020.9161502.
  4. 4. Caramizaru, A., & Uihlein, A. (2020). Energy Communities: An Overview of Energy and Social Innovation. Luxembourg: Publications Office of the European Union.
  5. 5. Official Statistics Portal. (2020). Significant Increase in Electricity Consumption in Transport Sector. Available at https://stat.gov.lv/en/statistics-themes/business-sectors/energy/press-releases/2176-energy-consumption-2019
  6. 6. Lebedeva, K., Krumins, A., Tamane, A., & Dzelzitis, E. (2021). Clean Technologies Analysis of Latvian Households’ Potential Participation in the Energy Market as Prosumers. Clean Technol. 2021, 3 (2), 437–449. doi: 10.3390/cleantechnol3020025.
  7. 7. Korotko, T., Rosin, A., & Ahmadiahangar, R. (2019). Development of prosumer logical structure and object modeling. In: 2019 IEEE 13th Int. Conf. Compat. Power Electron. Power Eng. CPE-POWERENG 2019, (no. 19047010), 23–25 April 2019, Sonderborg, Denmark. doi: 10.1109/CPE.2019.8862390.
  8. 8. Ministry of Economics. (2022). Apstiprināta atbalsta programma privātmāju energoefektivitātes paaugstināšanai un saules paneļu uzstādīšanai. Available at https://www.em.gov.lv/lv/jaunums/apstiprinata-atbalstaprogramma-privatmaju-energoefektivitatespaaugstinasanai-un-saules-paneluuzstadisanai
  9. 9. Ministry of Environmental Protection and Regional Development (2022). Atbalsta programma atjaunojamo energoresursu izmantošanai mājsaimniecībās. Available at https://www.varam.gov.lv/lv/atbalstaprogramma-atjaunojamo-energoresursuizmantosanai-majsaimniecibas?utm_source=https%3A%2F%2Fwww.google.com%2F
  10. 10. CSDD. (2022). Par 2021. gada 4. ceturksnī reģistrētajiem elektrotransportlīdzekļiem. Available at http://www.e-transports.org/index.php/statistika/33-elektro-transportlidzekli
  11. 11. European Court of Auditors. (2021). Special Report 05/2021: Infrastructure for Charging Electric Vehicles: More Charging Stations but Uneven Deployment Makes Travel across the EU Complicated. Available at https://www.eca.europa.eu/Lists/ECADocuments/SR21_05/SR_Electrical_charging_infrastructure_EN.pdf
  12. 12. lsm.lv (2021). State to Issue Grants for Purchase of Electric Vehicles. Available at https://eng.lsm.lv/article/economy/transport/latvian-state-to-issue-grants-for-purchase-of-electric-vehicles.a435503/
  13. 13. Di Silvestre, M.L., Ippolito, M.G., Sanseverino, E.R., Sciumè, G., & Vasile, A. (2021). Energy Self-Consumers and Renewable Energy Communities in Italy: New Actors of the Electric Power Systems. Renew. Sustain. Energy Rev., 151, 111565. doi: 10.1016/J.RSER.2021.111565.
  14. 14. Rae, C., Kerr, S., & Maroto-Valer, M.M. (2020). Upscaling Smart Local Energy Systems: A Review of Technical Barriers. Renew. Sustain. Energy Rev., 131, 110020, doi: 10.1016/J.RSER.2020.110020.
  15. 15. International Renewable Energy Agency. (2019). Future Of Solar Photovoltaic Deployment, Investment, Technology, Grid Integration and Socio-Economic Aspects. Available at www.irena.org/publications
  16. 16. Kampman, B., Blommerde, J., & Afman, M. (2016). The Potential of Energy Citizens in the European Union. Available at www.cedelft.eu
  17. 17. Piazza, G., Bracco, S., Delfino, F., & Siri, S. (2021). Optimal Design of Electric Mobility Services for a Local Energy Community. Sustain. Energy, Grids Networks, 26, 100440. doi: 10.1016/J.SEGAN.2021.100440.
  18. 18. Rosin, A., Drovtar, I., Molder, H., Haabel, K., Astapov, V., Vinnal, T., Korotko, T. (2022). Analysis of Traditional and Alternative Methods for Solving Voltage Problems in Low Voltage Grids: An Estonian Case Study. Energies 2022, 15 (3). doi: 10.3390/EN15031104.
  19. 19. Cerna, F.V. (2022). A Hybrid PV Scheme as Support to Relieve Congestion in the Domestic Supply Network. Int. J. Electr. Power Energy Syst., 134, 107413. doi: 10.1016/J.IJEPES.2021.107413.
  20. 20. Padhee, M., & Pal, A. (2018). Effect of solar PV penetration on residential energy consumption pattern. In: IEEE North American Power Symposium (NAPS), (pp. 1–6), 9–11 September 2018, Fargo, ND.10.1109/NAPS.2018.8600657
  21. 21. Sharma, V., Aziz, S.M., Haque, M.H., & Kauschke, T. (2020). Effects of High Solar Photovoltaic Penetration on Distribution Feeders and the Economic Impact. Renew. Sustain. Energy Rev., 131. doi: 10.1016/J.RSER.2020.110021.
  22. 22. Joint Research Centre. (2022). Our Models Portfolio. JRC Smart Electricity Systems and Interoperability. Available at https://ses.jrc.ec.europa.eu/power-system-modelling
  23. 23. European Commission. (2019). JRC Photovoltaic Geographical Information System (PVGIS). Available at https://re.jrc.ec.europa.eu/pvg_tools/en/tools.html#PVP
DOI: https://doi.org/10.2478/lpts-2022-0014 | Journal eISSN: 2255-8896 | Journal ISSN: 0868-8257
Language: English
Page range: 116 - 127
Published on: Jun 23, 2022
In partnership with: Paradigm Publishing Services
Publication frequency: 6 issues per year

© 2022 E. Kairisa, A. Mutule, I. Drovtar, T. Korotko, O. Borscevskis, H. Wilkening, Ch. Troyer, published by Institute of Physical Energetics
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.