Impact of Changes in the Required Thermal Insulation of Building Envelope on Energy Demand, Heating Costs, Emissions, and Temperature in Buildings
Abstract
:1. Introduction
2. Materials and Methods
2.1. Method for Calculating the Index of Annual Demand for Usable Energy for Heating
2.2. Characteristics of the Selected Residential Building
- -
- Building development area: 105.32 m2;
- -
- Total area: 162.48 m2;
- -
- Usable area: 150.11 m2;
- -
- Clear height of rooms: 2.70 m;
- -
- Volume: 690 m3.
2.3. Mathematical Model of the Annual Usable Energy Demand Index for Heating of a Selected Residential Building
2.4. Methods for Assessing Savings in Heating Costs, Emissions, and Perceptible Temperature in a Building
3. Result and Discussion
4. Conclusions
- -
- It was found that the change in the required Ui,max the selected building envelopes, from the level in force from 1 January 2014 to the current one, caused a decrease in the EUH for the selected residential building, typical for Polish conditions and with natural ventilation, by over 11% in each of the considered locations. The change in the required Ui,max of the selected building envelope from the current level to the requirements from 1 January 2021 will result in a further reduction of the EUH by over 15%.Differences in the energy demand of the same building in different locations in Poland are significant and amount to even 32.6% in the cases considered in the article. Therefore, it is reasonable to return to the approach of determining the requirements for thermal protection of heated buildings in Poland, not uniform for the whole country, but varied, taking into account the climatic conditions of the construction site.
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- Annual financial savings associated with changes in the required thermal insulation of the building envelope in the years 2014–2021, depending on the fuel used in the building, range from 43 EUR for gas supplying a building located in Szczecin, up to 211 EUR in a building located in Zakopane, when heating it with electricity. The reduction of carbon dioxide emissions in this respect may reach from 0.88% to 3.89% of current annual CO2 emissions per capita in Poland.
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- Increasing the thermal insulation of the walls has a slight but positive effect on the parameters of thermal comfort in rooms. The increase in the perceptible temperature resulting from the tightening of thermal requirements for external walls in Poland in the period from 2017 to 2021 ranges from 1.22% to 1.50%, depending on the location of the building.
Author Contributions
Funding
Conflicts of Interest
Abbreviations
the total heat transfer from the heated zone s in the n-th month of the year | |
the total heat sources in the heated zone s in the n-th month of the year | |
the dimensionless gain utilization factor in the heated zone s in the n-th month of the year | |
the total heat transfer by transmission from the heated zone s in the n-th month of the year | |
the total heat transfer by ventilation from the heated zone s in the n-th month of the year | |
the total heat transfer coefficient by transmission of the building or building zone s | |
average internal temperature of the heated building zone | |
average external temperature | |
the number of hours in a month | |
the reduction factors for the adjacent unheated spaces | |
Ai | the area of element i of the building envelope |
Ui | the thermal transmittance coefficient of element i of the building envelope |
li | the length of linear thermal bridge |
Ψi | the linear thermal transmittance of linear thermal bridge |
the total heat transfer coefficient by ventilation of the building or building zone s | |
the heat capacity of air per volume | |
the airflow rate through the heated space | |
the sum of solar heat sources from solar radiation through windows or door opening | |
the sum of internal heat sources | |
the share of glass plane surface area to the total area of the window | |
surface area of window or door opening | |
the average solar radiation in the considered month on the plane in which there is a window | |
the shading reduction factor for movable shading devices | |
the reducing factor due to shading from the external envelope | |
the total solar energy transmittance factor of the transparent part of the element | |
the heat flow from users and devices | |
the seasonal average total efficiency of the heating system | |
the seasonal average efficiency of heat generation of the heating system | |
the seasonal average efficiency of regulation and heat use in the heated space/heating system | |
the seasonal average efficiency of heat transfer of the heating system | |
the seasonal average energy storage efficiency | |
the demand for final energy | |
the cost of heating | |
the unit price of energy | |
emission factor depending on the type of fuel and pollution | |
the perceptible temperature |
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Period of Validity | Document Constituting the Legal Basis | Type of Building Envelope | ||||
---|---|---|---|---|---|---|
External Walls | Roofs | Windows and Balcony Doors | Roof Windows | Doors | ||
UC(max) (W/(m2K)) | ||||||
1957–1964 | PN-57/B-02405 (as a recommendation) | 1.16 or 1.42 (depending on the climate zone) | 0.87 | - | - | - |
1964–1974 | PN-64/B-03404 | 0.87 | - | - | - | |
1974–1982 | PN-74/B-03404 | 0.70 | 2.0–5.8 (depending on the climate zone) | 1.60–5.80 | ||
1982–1991 | PN-82/B-02020 | 0.75 | 0.45 | 2.0–2.6 (depending on the climate zone) | - | 1.10–5.60 |
1991–2002 | PN-91/B-02020 | 0.55–0.70 | 0.30 | - | 3.0 | |
2002–2008 | Journal of laws of the Republic of Poland, 2002, no 7, Item 690 | 0.30–0.50 | 0.30 | 2.00 | 2.60 | |
2009–2013 | Journal of laws of the Republic of Poland, 2008, no 201, Item 1238 | 0.30 | 0.25 | 1.70–1.80 | 1.80 | 2.60 |
2014–2016 | Journal of laws of the Republic of Poland, 2013, Item 926 | 0.25 | 0.20 | 1.30 | 1.50 | 1.70 |
2017–2019 | 0.23 | 0.18 | 1.10 | 1.30 | 1.50 | |
since 31 December 2020 | 0.20 | 0.15 | 0.90 | 1.10 | 1.30 |
Type of Building Envelope | Germany (Since 1 January 2016) | Austria (Since April 2019) | Slovak Republic (Since 1 January 2016) | Czech Republic (Since 1 January 2013) |
---|---|---|---|---|
Required U Value (W/(m2K)) | ||||
External walls | 0.28 | 0.35 | 0.22 | 0.30 |
Roofs | 0.20 | 0.20 | 0.15 | 0.24 |
Windows | 1.30 | 1.40 | 1.00 | 1.70 |
Doors | 1.80 | 1.70 | 2.50 | 3.50 |
Procedure for Calculating the Index of Annual Usable Energy Demand for Heating and Ventilation |
---|
Introduction of input variables U1, U2, U3, U4, U5 |
Introduction of permanent parameters Ui, Ai, Ψi, li, btr,i, θint,s,H, θe,n, tm, Aoi, Ci, Ii, Fsh,gl, Fsh, ggl, qint, Af, bve,k, Vve,s |
Calculation of heat losses by ventilation Hve,s, Qv,e,s,n |
Calculation of heat losses by transmission Htr,s, Qtr,s,n, QH,ht,s,n, QH,nd,s,n |
Calculation of heat gains Qsol,H, Qint,H |
Calculation of the annual demand for usable energy for heating and ventilation QH,nd,s,n |
Determination of the index of annual energy demand for heating and ventilation EUH = QH,nd,s,n/Af |
Group of Climatic Conditions | City | The Energy of Solar Radiation on the Plane with the Window S Orientation ƩIi (kWh/(m2∙Month)) | The Average Monthly External Temperature θe (°C) | The Sum of Hours of the Heating Season Ʃtm (h) |
---|---|---|---|---|
I | Szczecin | 48,188.5 | 4.49 | 5808 |
II | Lodz | 46,763.7 | 2.70 | 5328 |
III | Zakopane | 63,734.3 | 1.99 | 6048 |
Factor Level Ẋi | U1 (X1) | U2 (X2) | U3 (X3) | U4 (X4) | U5 (X5) |
---|---|---|---|---|---|
(W/(m2K)) | |||||
bottom (−1) | 0.20 | 0.15 | 0.90 | 1.10 | 1.30 |
middle (0) | 0.23 | 0.18 | 1.10 | 1.30 | 1.50 |
upper (+1) | 0.26 | 0.21 | 1.30 | 1.50 | 1.70 |
range of factor change ΔXi | 0.03 | 0.03 | 0.20 | 0.20 | 0.20 |
No | X1 | X2 | X3 | X4 | X5 | EUHI (YI,i) | EUHII (YII,i) | EUHIII (YIII,i) |
---|---|---|---|---|---|---|---|---|
(kWh/(m2year)) | ||||||||
1 | −1 | −1 | −1 | −1 | +1 | 43.2 | 48.0 | 57.6 |
2 | +1 | −1 | −1 | −1 | −1 | 47.6 | 52.7 | 63.2 |
3 | −1 | +1 | −1 | −1 | −1 | 45.9 | 50.9 | 61.1 |
4 | +1 | +1 | −1 | −1 | +1 | 52.2 | 57.6 | 69.1 |
… | … | … | … | … | … | … | … | … |
23 | 0 | 0 | 0 | −1 | 0 | 49.7 | 54.9 | 66.0 |
24 | 0 | 0 | 0 | +1 | 0 | 51.0 | 56.2 | 67.5 |
25 | 0 | 0 | 0 | 0 | −1 | 49.9 | 55.1 | 66.2 |
26 | 0 | 0 | 0 | 0 | +1 | 50.8 | 56.1 | 67.3 |
Fuel Type | The Seasonal Average Efficiency | Unit Prices Oz (EUR/kWh) | ||||
---|---|---|---|---|---|---|
ƞH,g | ƞH,e | ƞH,d | ƞH,s | ƞH,tot | ||
Natural gas | 0.94 | 0.89 | 0.96 | 1.00 | 0.80 | 0.0687 |
Heating oil | 0.94 | 0.89 | 0.96 | 1.00 | 0.80 | 0.0344 |
Coal | 0.82 | 0.89 | 0.96 | 1.00 | 0.70 | 0.0336 |
Biomass | 0.70 | 0.89 | 0.96 | 1.00 | 0.62 | 0.0345 |
Electricity | 0.99 | 0.89 | 1.00 | 1.00 | 0.93 | 0.1265 |
Lodz (III Climate Zone of Poland) | Szczecin (I Climate Zone of Poland) | Zakopane (V Climate Zone of Poland) | |
---|---|---|---|
θi(°C) | 20 | 20 | 20 |
θe (°C) | −20 | −16 | −24 |
θe*) (°C) | −1.0 | −0.2 | −3.0 |
Energy Carrier | Emission Factor WEH,CO2 [30,31] | Building Location | |||||
---|---|---|---|---|---|---|---|
Szczecin | Lodz | Zakopane | |||||
Final Energy Savings ΔOk,H When Changing Requirements: from: 2014 to 2017 2017 to 2021 | Emission Reduction ΔECO2 | Final Energy Savings ΔOk,H When Changing Requirements: from: 2014 to 2017 2017 to 2021 | Emission Reduction ΔECO2 | Final Energy Savings ΔOk,H When Changing Requirements: from: 2014 to 2017 2017 to 2021 | Emission Reduction ΔECO2 | ||
(kgCO2/GJ or MgCO2/MWh) | (GJ/Year or MWh/Year) | (kgCO2/Year) | (GJ/Year or MWh/Year) | (kgCO2/Year) | (GJ/Year or MWh/Year) | (kgCO2/Year) | |
Natural gas (in GJ/year) | 57.6 | 4.52 | 260.35 | 4.79 | 275.9 | 5.82 | 335.23 |
5.12 | 294.91 | 5.81 | 334.66 | 6.98 | 402.05 | ||
Heating oil (in GJ/year) | 77.4 | 4.52 | 349.85 | 4.79 | 370.75 | 5.82 | 450.47 |
5.12 | 396.29 | 5.81 | 449.69 | 6.98 | 540.25 | ||
Coal (in GJ/year) | 97.5 | 5.16 | 503.10 | 5.47 | 533.33 | 6.65 | 648.38 |
5.85 | 570.38 | 6.64 | 647.4 | 7.98 | 778.05 | ||
Biomass (in GJ/rok) | 112 | 5.83 | 652.96 | 6.18 | 692.16 | 7.51 | 841.12 |
6.61 | 740.32 | 7.50 | 840 | 9.01 | 1009.12 | ||
0 1 | 5.83 | 0 | 6.18 | 0 | 7.51 | 0 | |
6.61 | 0 | 7.5 | 0 | 9.01 | 0 | ||
Electricity (in MWh/year) | 0.765 | 1.08 | 826.2 | 1.14 | 872.1 | 1.39 | 1063.35 |
1.22 | 933.3 | 1.39 | 1063.35 | 1.67 | 1277.55 |
Energy Carrier | Emission Factor WEH [31,32,33] | Building Location | ||||||
---|---|---|---|---|---|---|---|---|
Szczecin | Lodz | Zakopane | ||||||
Emission Reduction ΔE (g/Year) When Changing Requirements from: 2014 to 2017 2017 to 2021 | ||||||||
SO2 | NOx | SO2 | NOx | SO2 | NOx | SO2 | NOx | |
Natural gas | 0.5 g/GJ | 50 g/GJ | 2.26 | 226 | 2.40 | 239.5 | 2.91 | 291 |
2.56 | 256 | 2.91 | 290.5 | 3.49 | 349 | |||
Heating oil | 140 g/GJ | 70 g/GJ | 632.8 | 316.4 | 670.6 | 335.3 | 814.8 | 407.4 |
716.8 | 358.4 | 813.4 | 406.7 | 977.2 | 488.6 | |||
Coal | 450 g/GJ | 165 g/GJ | 2322 | 851.4 | 2461.5 | 902.55 | 2992.5 | 1097.25 |
2632.5 | 965.25 | 2988 | 1095.6 | 3 591 | 1316.7 | |||
Biomass | 11 g/GJ | 91 g/GJ | 64.13 | 530.53 | 67.98 | 562.38 | 82.61 | 683.41 |
72.71 | 601.51 | 67.98 | 562.38 | 99.11 | 819.91 | |||
Electricity | 0.681 kg/MWh | 0.631 kg/MWh | 735.48 | 681.48 | 776.34 | 719.34 | 946.59 | 877.09 |
830.82 | 769.82 | 946.59 | 877.09 | 1137.27 | 1053.77 |
θsi (°C) | |||
---|---|---|---|
Variant I | Variant II | Variant III | |
θi = 20 °C; θe = −20 °C | 17.58 | 17.78 | 18.05 |
θi = 20 °C; θe = −1 °C | 18.73 | 18.84 | 18.98 |
θi = 20 °C; θe = −16 °C | 17.82 | 18.00 | 18.25 |
θi = 20 °C; θe = −0.2 °C | 18.78 | 18.88 | 19.02 |
θi = 20 °C; θe = −24 °C | 17.34 | 17.56 | 17.86 |
θi = 20 °C; θe = −3 °C | 18.61 | 18.73 | 18.88 |
θsi (°C) | |||
---|---|---|---|
Variant I | Variant II | Variant III | |
θi = 20 °C; θe = −20 °C | 18.06 | 18.23 | 18.50 |
θi = 20 °C; θe = −1 °C | 18.98 | 19.07 | 19.21 |
θi = 20 °C; θe = −16 °C | 18.26 | 18.41 | 18.65 |
θi = 20 °C; θe = −0.2 °C | 19.03 | 19.11 | 19.24 |
θi = 20 °C; θe = −24 °C | 17.87 | 18.06 | 18.35 |
θi = 20 °C; θe = −3 °C | 18.89 | 18.98 | 19.14 |
θmin (°C) | |||
---|---|---|---|
Variant I | Variant II | Variant III | |
θi = 20 °C; θe = −20 °C | 14.56 | 14.56 | 15.38 |
θi = 20 °C; θe = −1 °C | 17.14 | 17.14 | 17.58 |
θi = 20 °C; θe = −16 °C | 15.10 | 15.10 | 15.84 |
θi = 20 °C; θe = −0.2 °C | 17.25 | 17.25 | 17.67 |
θi = 20 °C; θe = −24 °C | 14.01 | 14.01 | 14.92 |
θi = 20 °C; θe = −3 °C | 16.87 | 16.87 | 17.34 |
θmin (°C)/θ1 (°C) | |||
---|---|---|---|
Variant I | Variant II | Variant III | |
θi = 20 °C; θe = −20 °C | 16.55/18.03 | 16.89/18.21 | 17.33/18.46 |
θi = 20 °C; θe = −1 °C | 18.19/18.96 | 18.37/19.06 | 18.60/19.19 |
θi = 20 °C; θe = −16 °C | 16.89/18.22 | 17.20/18.39 | 17.59/18.61 |
θi = 20 °C; θe = −0.2 °C | 18.26/19.00 | 18.43/19.10 | 18.65/19.22 |
θi = 20 °C; θe = −24 °C | 16.20/17.83 | 16.58/18.03 | 17.06/18.30 |
θi = 20 °C; θe = −3 °C | 18.02/18.86 | 18.21/18.97 | 18.46/19.11 |
θmin (°C) | |||
---|---|---|---|
Variant I | Variant II | Variant III | |
θi = 20 °C; θe = −20 °C | 14.48 | 14.63 | 14.89 |
θi = 20 °C; θe = −1 °C | 17.10 | 17.18 | 17.32 |
θi = 20 °C; θe = −16 °C | 15.03 | 15.17 | 15.40 |
θi = 20 °C; θe = −0.2 °C | 17.21 | 17.29 | 17.42 |
θi = 20 °C; θe = −24 °C | 13.93 | 14.10 | 14.38 |
θi = 20 °C; θe = −3 °C | 16.83 | 16.91 | 17.06 |
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Jezierski, W.; Sadowska, B.; Pawłowski, K. Impact of Changes in the Required Thermal Insulation of Building Envelope on Energy Demand, Heating Costs, Emissions, and Temperature in Buildings. Energies 2021, 14, 56. https://doi.org/10.3390/en14010056
Jezierski W, Sadowska B, Pawłowski K. Impact of Changes in the Required Thermal Insulation of Building Envelope on Energy Demand, Heating Costs, Emissions, and Temperature in Buildings. Energies. 2021; 14(1):56. https://doi.org/10.3390/en14010056
Chicago/Turabian StyleJezierski, Walery, Beata Sadowska, and Krzysztof Pawłowski. 2021. "Impact of Changes in the Required Thermal Insulation of Building Envelope on Energy Demand, Heating Costs, Emissions, and Temperature in Buildings" Energies 14, no. 1: 56. https://doi.org/10.3390/en14010056
APA StyleJezierski, W., Sadowska, B., & Pawłowski, K. (2021). Impact of Changes in the Required Thermal Insulation of Building Envelope on Energy Demand, Heating Costs, Emissions, and Temperature in Buildings. Energies, 14(1), 56. https://doi.org/10.3390/en14010056