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Optimal Sharing Electricity and Thermal Energy

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Sustainability 2022, 14, 10125 39 of 39 40. Lamaison, N.; Collette, S.; Vallée, M.; Bavière, R. Storage influence in a combined biomass and power-to-heat district heating production plant. Energy 2019, 186, 115714. [CrossRef] 41. Vand, B.; Ruusu, R.; Hasan, A.; Delgado, B.M. Optimal management of energy sharing in a community of buildings using a model predictive control. Energy Convers. Manag. 2021, 239, 114178. [CrossRef] 42. Iqbal, S.; Nasir, M.; Zia, M.F.; Riaz, K.; Sajjad, H.; Khan, H.A. A novel approach for system loss minimization in a peer-to-peer energy sharing community DC microgrid. Int. J. Electr. Power Energy Syst. 2021, 129, 106775. [CrossRef] 43. Rashidizadeh-Kermani, H.; Vahedipour-Dahraie, M.; Shafie-khah, M.; Siano, P. Optimal bidding of profit-seeking virtual associations of smart prosumers considering peer to peer energy sharing strategy. Int. J. Electr. Power Energy Syst. 2021, 132, 107175. [CrossRef] 44. Dal Cin, E.; Carraro, G.; Volpato, G.; Lazzaretto, A.; Danieli, P. A multi-criteria approach to optimize the design-operation of Energy Communities considering economic-environmental objectives and demand side management. Energy Convers. Manag. 2022, 263, 115677. [CrossRef] 45. Liu, Z.; Fan, G.; Sun, D.; Wu, D.; Guo, J.; Zhang, S.; Yang, X.; Lin, X.; Ai, L. A novel distributed energy system combining hybrid energy storage and a multi-objective optimization method for nearly zero-energy communities and buildings. Energy 2022, 239, 122577. [CrossRef] 46. Herencˇic ́, L.; Kirac, M.; Keko, H.; Kuzle, I.; Rajšl, I. Automated energy sharing in MV and LV distribution grids within an energy community: A case for Croatian city of Križevci with a hybrid renewable system. Renew. Energy 2022, 191, 176–194. [CrossRef] 47. IEA—International Energy Agency. CO2 Emissions from Fuel Combustion. 2019. Available online: https://www.oecd-ilibrary. org/energy/co2-emissions-from-fuel-combustion-2019_2a701673-en (accessed on 5 April 2022). 48. Ortiga, J.; Bruno, J.C.; Coronas, A. Selection of typical days for the characterisation of energy demand in cogeneration and trigeneration optimisation models for buildings. Energy Convers. Manag. 2011, 52, 1934–1942. [CrossRef] 49. Our World in Data. Carbon Dioxide Emissions. 2017. Available online: https://ourworldindata.org/grapher/carbon-dioxide- emissions-factor?tab=table (accessed on 23 June 2022). 50. X-Press Software. Available online: https://www.fico.com/en/products/fico-xpress-optimization (accessed on 23 June 2022). 51. Mosel Language. Available online: https://www.fico.com/fico-xpress-optimization/docs/latest/mosel/mosel_lang/dhtml/ moselreflang.html (accessed on 23 June 2022). 52. Casisi, M.; Costanzo, S.; Pinamonti, P.; Reini, M. Two-Level Evolutionary Multi-Objective Optimization of a District Heating System with Distributed Cogeneration. Energies 2019, 12, 114. [CrossRef]

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