Analysis of district heating and heat pump application at the level of a typical non-renovated multi-apartment building
DOI:
https://doi.org/10.3846/da.2026.2269Language:
EnglishAbstract
The study evaluates the feasibility of integrating airtowater heat pump systems into a nonrenovated multiapartment building connected to a district heating network. The research is based on real annual heat consumption data (471.82 MWh) and dynamic modelling performed using the EnergyPRO software. A baseline district heating scenario was compared with three hybrid system configurations differing in heat pump cutoff temperature (–5 °C, –10 °C and –15 °C outdoor temperature). The results demonstrate that hybrid systems significantly reduce annual operating costs without modifying the building’s internal heating system. Compared to the baseline scenario (45,917.82 EUR/year), operating costs were reduced by more than 50% in all alternative cases. The most economically efficient configuration was obtained when the heat pump operated down to –15 °C, resulting in the lowest annual cost (21,740.51 EUR/year) and the shortest simple payback period (4.76 years). The analysis confirms that hybrid district heating and heat pump systems can serve as a rational transitional solution for improving energy efficiency in existing multiapartment buildings, especially in areas where district heating infrastructure modernization is planned. The economic performance of the system is strongly influenced by the selected operating strategy of the heat pump.
Article in Lithuanian
Keywords:
heat pumps, apartment building, energy efficiency, hybrid system, centralized heat supplyCholewa, T., Bejan, A.-S., Miara, M., Schauer, C., Kosonen, R., Borodiņecs, A., Bogdanovičs, R., Amanowicz, Ł., Vering, C., Siuta-Olcha, A., Skwarczyński, M. A., Kropp, M., Kurnitski, J., Lungu, C., Croitoru, C., Afshari, A., d’Ambrosio Alfano, F. R., Müller, D., Nastase, I., ... Sekret, R. (2025). Challenges of integrating heat pumps in existing buildings. Energy, 326, Article 136158. https://doi.org/10.1016/j.energy.2025.136158
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