A New Approach to the Economic Evaluation of Thermomodernization: Annual Assessment Based on the Example of Production Space
Abstract
:1. Introduction
2. Materials and Methods
2.1. Economic Indicators
- The Thermal Modernization Measure (TMM) is an undertaking aimed at reducing the demand for heat or cooling energy in a building;
- The Seasonal Thermal Modernization Measure (STMM) separately considers the cold and warm seasons, and refers to the insulation of the building envelopes, as well as the heating and ventilation systems;
- The Year-Round Thermal Modernization Measure (YTMM) refers to the cumulative effects of STMMs in both seasons, i.e., throughout the year;
- The Thermal Modernization Option (TMO) describes the cumulative effect of several STMMs, considered separately for the cold and warm season. In other words, the TMO is the combination of several STMMs in the corresponding period of the year.
2.2. New Approach
- Demand for usable energy, EU index;
- Capital expenditure;
- Saving the annual energy cost;
- Simple payback period;
- Net present value ratio.
3. Case Study
3.1. Building Characteristic and Its Location
- First climate zone according to the DBN V.2.6-31 standard [56];
- Climate zone 5A according to the ASHRAE;
- The mean annual air temperature is 8.8 °C;
- The mean temperature of the coldest five days in the cold season is −19 °C;
- The duration of the heating season (cold season) is 179 days and the remaining days of the year are the warm season. There are no specific regulations governing the heating season, including when it starts and ends. Nevertheless, a certain period of time has been defined and confirmed by case law. Accordingly, the heating season starts in October, when the mean daily external temperature of three consecutive days is lower than 12 °C;
- The mean temperature of the heating season is +0.4 °C;
- The mean temperature of the five hottest days in the warm season is +23 °C.
3.2. Thermal Modernization Improvements Options
- Window replacement (from R = 0.36 m2K/W to R = 0.9 m2K/W). The U value can be simply calculated, i.e., old windows with U-value of 2.8 W/(m2K) were replaced by new windows with U = 1.1 W/(m2K);
- The insulation of the external walls was improved from R = 1 m2K/W to R = 3.3 m2K/W (achieved by polystyrene foam boards with a thickness of 100 mm), i.e., U before thermomodernization equaled 1 W/(m2K), while after U = 0.3 W/(m2K);
- Installation of the infrared heaters.
- Installation of two-flow air diffuser TFAD;
- Use of variable air volume (VAV) in the ventilation system by application of an integrated actuator.
- Window replacement and installation of two-flow air diffuser TFAD,
- Window replacement and implementation of VAV,
- Insulating the walls and installation of two-flow air diffuser TFAD,
- Insulating the walls and implementation of VAV,
- Installation of infrared heaters and two-flow air diffuser TFAD,
- Installation of infrared heaters and implementation of VAV.
- For electricity, CEE = 0.036 EUR/kWh (10 EUR/GJ),
- For heating, CHE = 14 EUR/GJ,
- For cooling, CEC = 40 EUR/GJ.
3.3. Modernization of Building Installation
3.4. Results and Discussion
- Heat losses qh were determined from the Formula (2), the temperature of the coldest five days t5 = −19 °C, tin = 18 °C, and the U coefficients of the thermal modernization measures;
- The determination of the building energy demand Q0 in GJ during the cold season, in accordance with the average temperature of the heating season, that is, +0.4 °C, and taking into account the duration of cold season (179 days);
- Similarly, the determination of the building energy demand Qi in GJ for each STMM separately;
- The determination of energy saving: ΔQCS = Q0 − Qi for each STMM separately;
- The determination of investments in EUR for each STMM separately, in accordance with Equations (1), (4) and (5);
- The determination of annual energy and savings by the combination of two seasonal thermal modernization measures (one each for the cold and warm seasons) as a sum of both savings.
- TMO I: Infrared heaters and TFAD installation;
- TMO II: Infrared heater installation and TFAD installation + VAV;
- TMO III: Infrared heater installation, TFAD installation and VAV + Window replacement;
- TMO IV (as TMO III): Infrared heater installation, TFAD installation, VAV and window replacement (no measures added);
- TMO V: Infrared heaters installation, TFAD installation, VAV and window replacement + Wall thermal insulation
- TMO VI (as TMO V): Infrared heater installation, TFAD installation, VAV, window replacement and wall thermal insulation (no measures added).
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Authors, Year | Title; Journal | Thermal Modernization Measure | Season |
---|---|---|---|
Krawczyk D.A., 2004 [38] | The optimum variants of warming up walls, roof, windows change and a heating system modernization in the typical school according to its localization (in Polish); Instal. | Reducing heat losses through building partitions, improving the efficiency of the heating system. | 1 |
Przesmycka N. et al., 2023 [39] | Modernisation of hospital buildings built in the 20th century in the context of architectural, functional and operational problems; Architectus. | Modernization of installation, thermomodernization, replacement of window and door joinery. | 1 |
Krawczyk D.A., 2014 [40] | Theoretical and real effect of the school’s thermal modernization—A case study; Energy and Buildings. | Reducing heat losses through building partitions, improving the efficiency of the heating system. | 1 |
Gładyszewska-Fiedoruk K. et al., 2014, [41] | The possibilities of energy consumption reduction and a maintenance of indoor air quality in doctor’s offices located in north-eastern Poland; Energy and Buildings. | Replace radiators and pipes; pipe insulation; wall insulation; window replacements. | 1 |
Ołtarzewska A. et al., 2022 [20] | Analysis of the influence of selected factors on heating costs and pollutant emissions in a cold climate on the example of a service building located in Bialystok; Enegies. | Thermal insulation of the building partitions, heat source replacement. | 1 |
Lis A., 2020 [8] | Renewable Energy Sources and Rationalisation of Energy Consumption in Buildings as a Way to Reduce Environmental Pollution; Renewable Energy | Thermal insulation of building envelope; renewable energy sources; replacement of the windows and doors; modernize the central heating system; hot water heating; installation of heating elements with low thermal inertia and thermostatic valves; installation lagging on the central heating pipes; ineffective electric heaters with a centralized heating from their own boiler room replacement. | 1 |
Lis A. et al., 2019 [42] | The quality of the microclimate in educational buildings subjected to thermal modernization | Insulation of building envelope and modernization of the heating system and hot water preparation. | 1 |
Bøhm B., 2013 [43] | Production and distribution of domestic hot water in selected Danish apartment buildings and institutions. Analysis of consumption, energy efficiency and the significance for energy design requirements of buildings; Energy Conversion and Management Journal | Improving the DHW system. | 1/2 |
Hałacz J. et al., 2020 [44] | Assessment of Reducing Pollutant Emissions in Selected Heating and Ventilation Systems in Single-Family Houses; Energies | Heat sources, mechanical ventilation with ground-coupled heat exchanger. | 1/2 |
Ferdyn-Grygierek J. et al., 2019 [45] | HVAC control methods for drastically improved hygrothermal museum microclimates in warm season; Building and Environment | HVAC control. | 2 |
Ratajczak, K et al., 2020 [46] | Assessment of the air streams mixing in wall-type heat recovery units for ventilation of existing and refurbishing buildings toward low energy buildings; Energy and Buildings | Mechanical ventilation systems with heat recovery. | 2 |
Zender-Świercz E. et al., 2013 [47] | Thermomodernization a building and its impact on the indoor microclimate; Structure and Environment | Sealing the roof. | 1/2 |
YTMM | Thermal Modernization Options (TMO) | ||||
---|---|---|---|---|---|
I | II | … | … | … | |
TMM for cold + TMM for warm season | + | + | + | + | + |
TMM for cold + TMM for warm season | + | + | + | + | |
TMM for cold + TMM for warm season | + | + | + | ||
TMM for cold + TMM for warm season | + | + | |||
TMM for cold + TMM for warm season | + | ||||
Indicators | |||||
Investment cost I | |||||
Annual savings K | |||||
SPBT, year | SPBTI < | SPBTII < | SPBTi < | SPBTii < | SPBTnmax |
NPVR, EUR | NPVRmax | ||||
IRR, % |
Building Envelope | U [W/(m2·K)] |
---|---|
Exterior walls | 0.30 |
Flat roof above heated spaces | 0.20 |
Floor on the ground | 0.20 |
Flat roof over unheated attic | 0.20 |
Flat roof over unheated basement | 0.27 |
Exterior windows | 1.33 |
Exterior doors | 1.67 |
STMM | Energy Demand, Q0, GJ/year | Energy Demand Qi, GJ/Year | Energy Saving ΔQCS, GJ/Year | Savings Ki, EUR/Year |
---|---|---|---|---|
Before Change | After Change | |||
Window replacement | 40 | 20 | 20 | 280 |
Wall thermal insulation | 40 | 22 | 18 | 252 |
Installation of infrared heaters | 40 | 24 | 16 | 224 |
STMM | Energy Needs, Q0, GJ/Year | Energy Needs Qi, GJ/Year | Energy Saving ΔQWS GJ/Year | Savings Ki, EUR/Year |
---|---|---|---|---|
Before Change | After Change | |||
TFAD installation | 9.233 | 6.487 | 2.746 | 109 |
Variable mode of the ventilation system (VAV) | 9.233 | 6.122 | 3.111 | 124 |
YTMMs Combinations of STMMs | Energy Demand, Q0, GJ/Year | Energy Demand Qi, GJ/Year | Energy Saving ΔQCS, GJ/Year | Savings Ki, EUR/Year |
---|---|---|---|---|
Before Change | After Change | |||
Window replacement and TFAD installation | 49.233 | 26.487 | 22.746 | 390 |
Window replacement and VAV | 49.233 | 26.122 | 23.111 | 404 |
Wall thermal insulation and TFAD installation | 49.233 | 28.487 | 20.746 | 362 |
Wall thermal insulation and VAV | 49.233 | 28.122 | 21.111 | 376 |
Infrared heaters installation and TFAD installation | 49.233 | 30.487 | 18.746 | 334 |
Infrared heaters installation and VAV | 49.233 | 30.122 | 19.111 | 384 |
YTMM | Investment Cost, Ii, EUR | Annual Saving Ki, EUR/Year | SPBT, Year | NPVR, EUR | IRR, % |
---|---|---|---|---|---|
Window replacement and TFAD installation | 1904 | 390 | 4.9 | −60 | 7.8 |
Window replacement and VAV | 2006 | 404 | 5.0 | −92 | 7.7 |
Wall thermal insulation and TFAD installation | 2098 | 362 | 5.8 | +1710 | 6.9 |
Wall thermal insulation and VAV | 2200 | 376 | 5.8 | +1778 | 6.8 |
Infrared heaters and TFAD installation | 157 | 334 | 0.5 | +1422 | 26 |
Infrared heaters installation and VAV | 259 | 384 | 0.5 | +1390 | 22 |
YTMM | Thermal Modernization Options (TMO) | |||||
---|---|---|---|---|---|---|
I | II | III | IV | V | VI | |
Infrared heaters and TFAD installation | + | + | + | + | + | + |
Infrared heater installation and VAV | + | + | + | + | + | |
Window replacement and TFAD installation | + | + | + | + | ||
Window replacement and VAV | + | + | + | |||
Wall thermal insulation and TFAD installation | + | + | ||||
Wall thermal insulation and VAV | + | |||||
Indicators | ||||||
Investment cost I, EUR | 157 | 357 | 2163 | 2163 | 4163 | 4163 |
Annual savings K, EUR | 334 | 458 | 738 | 738 | 990 | 990 |
SPBT, year | 0.5 | 0.8 | 2.9 | 2.9 | 4.2 | 4.2 |
NPVR, EUR | 1422 | 1806 | 1324 | 1324 | 516 | 516 |
IRR, % | 26% | 22% | 11% | 11% | 9% | 9% |
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Voznyak, O.; Dudkiewicz, E.; Laska, M.; Antypov, I.; Spodyniuk, N.; Sukholova, I.; Savchenko, O. A New Approach to the Economic Evaluation of Thermomodernization: Annual Assessment Based on the Example of Production Space. Energies 2024, 17, 2105. https://doi.org/10.3390/en17092105
Voznyak O, Dudkiewicz E, Laska M, Antypov I, Spodyniuk N, Sukholova I, Savchenko O. A New Approach to the Economic Evaluation of Thermomodernization: Annual Assessment Based on the Example of Production Space. Energies. 2024; 17(9):2105. https://doi.org/10.3390/en17092105
Chicago/Turabian StyleVoznyak, Orest, Edyta Dudkiewicz, Marta Laska, Ievgen Antypov, Nadiia Spodyniuk, Iryna Sukholova, and Olena Savchenko. 2024. "A New Approach to the Economic Evaluation of Thermomodernization: Annual Assessment Based on the Example of Production Space" Energies 17, no. 9: 2105. https://doi.org/10.3390/en17092105
APA StyleVoznyak, O., Dudkiewicz, E., Laska, M., Antypov, I., Spodyniuk, N., Sukholova, I., & Savchenko, O. (2024). A New Approach to the Economic Evaluation of Thermomodernization: Annual Assessment Based on the Example of Production Space. Energies, 17(9), 2105. https://doi.org/10.3390/en17092105