Energy Efficiency in Heat Pumps and Solar Collectors: Case of Slovakia
Abstract
:1. Introduction
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- Spatial location of the assessed object or buildings in the sense of belonging to the climatic area.
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- Location of the object in relation to the surrounding environment.
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- Characteristics of the object from the point of view of its use, construction and technical parameters.
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- Energy audit of the object.
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- Device design taking into account previous results.
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- Implementation of the obtained procedure as a possible methodology in the concept of the RES use in the given municipality or region in connection with existing registers.
2. Materials and Methods
- From a technological point of view, today’s heat pumps can cover a wide range of temperatures. They work at an outside temperature of up to −25 °C and increasingly provide hot water with a temperature of up to 65 °C in an efficient way. Thanks to this, their installation is possible in a much larger proportion of buildings than ten years ago;
- The need to accelerate the energy transition in the heating and cooling sector has put heat pumps at the centre of attention of politicians in individual countries. Legislation adopted in the last 8 years is now transposed in all Member States, with its impact gradually beginning to show. Building standards limit the maximum heat demand per square meter, mandate the integration of renewable energy, and prioritize low-energy buildings;
- Constantly increasing demand and sales of heat pumps lead to their lower procurement costs. Economies of scale are reflected at the component and product levels. The rapid decrease in production costs of photovoltaic systems also affects the heating market, and the use of own electricity production in combination with a heat pump system provides a very cheap source of energy for buildings [28] (Figure 1).
- Old house without insulation: G = 2;
- Old house additionally and partially insulated: G = 1.5;
- House constructed after 1990: G = 1.1;
- House constructed after 2005: G = 0.8;
- House constructed between 2010–2015: G = 0.6;
- House constructed after 2015: G = 0.4.
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- STN EN ISO 13790:2008—Energy performance of buildings. Calculation of energy use for space heating and cooling;
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- STN EN ISO 13789:2008—Thermal performance of buildings. Transmission and ventilation heat transfer coefficients;
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- STN EN ISO 13370:2008—Thermal performance of buildings. Heat transfer via the ground
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- STN EN ISO 10077-1:2007—Thermal performance of windows, doors and shutters. Calculation of thermal transmittance
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- STN EN ISO 6946:2008—Building components and building elements. Thermal resistance and thermal transmittance
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- STN 73 0540-2:2013—Thermal protection of buildings. Thermal and technical characteristics of building constructions and buildings, Part 2: Functional demands
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- STN 73 0540-3: 2013—Thermal protection of buildings. Thermal and technical characteristics of building constructions and buildings, Part 3: Characteristics of the environment and construction products.
3. Results
4. Discussion
- Comparison of current energy consumption with the proposed solution (based on previous energy bills);
- Comparison with purely electric heating.
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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No | Country | Percentage Rate |
---|---|---|
5. | Slovakia | 17.4% |
1. | Sweden | 62.6% |
2. | Finland | 41% |
3. | Latvia | 40.5% |
4. | Austria | 36.4% |
6. | Hungary | 14.1% |
- | EU average | 21.8% |
Step 1 | Characteristics of the locality | Meteorological and climatic characteristics |
|
Geological and hydrogeological conditions |
| ||
Step 2 | Analysis of chosen objects | Calculation of heat performance, heat need and heat losses |
|
Step 3 | Suggestion of heat pumps | The choice of heat pump |
|
Step 4 | Suggestion of solar collectors | A design of solar system |
|
Building | Building 1 | Building 2 | Building 3 |
---|---|---|---|
Heat pump | Alterra SWC 102K3 (Ait Slovakia, Ltd. Bratislava, Slovakia) | Vitocal 200-S 230 V, type D10 AWB-M-E-AC 201.D (Imperials, Ltd., Trnava, Slovakia) | Vitocal 200 g 400 V BWC 201.B10 (Imperials, Ltd., Trnava, Slovakia) |
Power consumption [kW] | 9.34 | 12.6 | 9.8 |
Type | ground-water | air-water | water-water |
Building | Building 1 | Building 2 | Building 3 |
---|---|---|---|
Heat pump | Alterra SWC 102K3 | Vitocal 200-S 230 V, type D10 AWB-M-E-AC 201.D | Vitocal 200 g 400 V BWC 201.B10 |
Performance number | 5.05 | 5.0 | 5.3 |
Heat demand: [kWh/year] | 11,141.19 | 16,051.9 | 12,463.83 |
Energy consumption [kWh/year] | 2206.18 | 3210.38 | 2351.67 |
Building | Building 1 | Building 2 | Building 3 |
---|---|---|---|
Heat pump | Alterra SWC 102K3 | Vitocal 200-S 230 V, type D10 AWB-M-E-AC 201.D | Vitocal 200 g 400 V BWC 201.B10 |
Energy consumption [kWh/year] | 2206.18 | 3210.38 | 2351.67 |
Price of electricity [EUR/kWh] | 0.1420 | ||
Electricity costs [EUR] | 313.28 | 455.87 | 333.94 |
Building | Building 1 | Building 2 | Building 3 |
---|---|---|---|
Solar assembly | 3 × collector Viessmann Vitosol 100-FM SH1F, 1 × hot water tank (Imperials, Ltd., Trnava, Slovakia) | 4 × collector Viessmann Vitosol 200-FM SV2F, 2 × hot water tank (Imperials, Ltd., Trnava, Slovakia) | 4 × collector Thermosolar TS 300, 1 × hot water tank (Thermosolar Slovakia, Žiar nad Hronom, Slovakia) |
Gas consumption without collectors [kWh/year] | 4206 | 7360 | 5260 |
Gas consumption with collectors [kWh/year] | 1198 | 2149 | 1386 |
Gas price [EUR/kWh] | 0.043 | ||
Gas costs without collectors [EUR] | 180.86 | 316.48 | 226.18 |
Gas costs with collectors [EUR] | 51.51 | 92.4 | 59.6 |
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Share and Cite
Kuzevic, S.; Tausova, M.; Culkova, K.; Domaracka, L.; Shyp, D. Energy Efficiency in Heat Pumps and Solar Collectors: Case of Slovakia. Processes 2024, 12, 681. https://doi.org/10.3390/pr12040681
Kuzevic S, Tausova M, Culkova K, Domaracka L, Shyp D. Energy Efficiency in Heat Pumps and Solar Collectors: Case of Slovakia. Processes. 2024; 12(4):681. https://doi.org/10.3390/pr12040681
Chicago/Turabian StyleKuzevic, Stefan, Marcela Tausova, Katarina Culkova, Lucia Domaracka, and Danylo Shyp. 2024. "Energy Efficiency in Heat Pumps and Solar Collectors: Case of Slovakia" Processes 12, no. 4: 681. https://doi.org/10.3390/pr12040681
APA StyleKuzevic, S., Tausova, M., Culkova, K., Domaracka, L., & Shyp, D. (2024). Energy Efficiency in Heat Pumps and Solar Collectors: Case of Slovakia. Processes, 12(4), 681. https://doi.org/10.3390/pr12040681