Estimation of Energy Profile and Possible Energy Savings of Unclassified Buildings
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Data on Real Thermal Energy Consumption in Unclassified Buildings
3.2. Indoor Air Quality Measurements in Unclassified Dormitories
3.3. Theoretical Retrofitting Potential of Unclassified Dormitories
4. Potential of Onsite Energy Production for Increasing Unclassified Building Efficiency
5. Discussion
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Indoor Temperature (t, °C) | Relative Humidity (%) | Indoor CO2 Concentration (PPM) | |
---|---|---|---|
Building_1 | 21.6 | 33.6 | 586 |
Building_2 | 20.3 | 35.1 | 521 |
Building_3 | 20.5 | 50.8 | 739 |
Building_4 | 21.7 | 53.7 | 620 |
Building_5 | 22.6 | 17.3 | 487 |
Building_6 | 19.8 | 46.3 | 632 |
Building_7 | 21.6 | 37.3 | 487 |
Building_8 | 18.9 | 30.7 | 753 |
Building_9 | 20.1 | 24.3 | 550 |
Building_10 | 15.8 | 30.2 | 743 |
Building_11 | 21.1 | 19.3 | 551 |
Building_12 | 21.8 | 30.8 | 584 |
Building_13 | 21.8 | 27.7 | 394 |
Average | 20.6 | 33.6 | 588 |
U-Values, W/m2∙K | Air Flow of Wind Dependent Infiltration at Pressure Difference 50 Pa, m3/(h·m2 ext.surf) | Exhaust Air Heat Recovery, % | Air Exchange Rate, ACH | Location | HVAC Electricity, kWh/m2 | District Heating, kWh/m2 | |
---|---|---|---|---|---|---|---|
Scenario 1 | Windows—2.6 Walls—0.9 Floor—0.8 Roof—0.9 | 4 | 0 | 0.5 | Daugavpils | 0 | 222.7 |
Riga | 0 | 201.4 | |||||
Liepaja | 0 | 190.5 | |||||
Scenario 2 | Windows—1.1 Walls—0.16 Floor—0.16 Roof—0.10 | 1.5 | 0 | 0.5 | Daugavpils | 0 | 94.4 |
Riga | 0 | 85.3 | |||||
Liepaja | 0 | 79.5 | |||||
Scenario 3 | Windows—1.1 Walls—0.16 Floor—0.16 Roof—0.10 | 1.5 | 80 | 0.5 | Daugavpils | 6.2 | 50 |
Riga | 6.2 | 43.7 | |||||
Liepaja | 6.2 | 39.4 | |||||
Scenario 4 | Windows—1.1 Walls—0.16 Floor—0.16 Roof—0.10 | 1.5 | 80 | 0.5 * | Daugavpils | 13.0 | 72 |
Riga | 13.0 | 63.4 | |||||
Liepaja | 13.0 | 58.8 |
Location | Floor Area, m2 | Volume, m3 | Land Area, m2 | Window/Ratio of Enclosing Structures, % | Average U—Value, W/(m2·K) | Roof Side Area, m2 | Slope of the Roof |
---|---|---|---|---|---|---|---|
Riga | 3297.2 | 11,664.5 | 832.1 | 6.40 | 0.9682 | 504 | 30° |
Collector Area | Number of Collectors | Area Occupied by Collectors |
---|---|---|
385 m2 | 180 | 76% |
Number of PV Panels | Rated Capacity, W | MPP Voltage, V | MPP Current, A | Total Capacity, kWp | PV Area, m2 |
---|---|---|---|---|---|
32 | 576 W | 132 | 4.37 | 18.43 | 371.2 |
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Geikins, A.; Borodinecs, A.; Jacnevs, V. Estimation of Energy Profile and Possible Energy Savings of Unclassified Buildings. Buildings 2022, 12, 974. https://doi.org/10.3390/buildings12070974
Geikins A, Borodinecs A, Jacnevs V. Estimation of Energy Profile and Possible Energy Savings of Unclassified Buildings. Buildings. 2022; 12(7):974. https://doi.org/10.3390/buildings12070974
Chicago/Turabian StyleGeikins, Aleksandrs, Anatolijs Borodinecs, and Vladislavs Jacnevs. 2022. "Estimation of Energy Profile and Possible Energy Savings of Unclassified Buildings" Buildings 12, no. 7: 974. https://doi.org/10.3390/buildings12070974
APA StyleGeikins, A., Borodinecs, A., & Jacnevs, V. (2022). Estimation of Energy Profile and Possible Energy Savings of Unclassified Buildings. Buildings, 12(7), 974. https://doi.org/10.3390/buildings12070974