A Study for the Improvement of the Energy Performance Certificate (EPC) System in Turkey
Abstract
:1. Introduction
2. Review of the Literature
2.1. Method of the Review
2.2. Fallacy of EPC System and Gaps Indicated
2.2.1. Problems in the EPC System and Calculation: Geographical and Technical Differences
- Calculation of energy consumption per month: for space heating and cooling;
- Calculation of energy demand: for heating, cooling and domestic hot water;
- A summary: savings based on estimations (fuel consumption, electricity, CO2 emissions, energy indicator) and cost (investment cost, payback period).
2.2.2. Problems in the Process of Issuing and Audit: Overestimations and Real Data
2.2.3. Perspective on the EPC System in the Building Sector: Who Cares about EPC?
3. Materials and Methods
4. Towards the EPC Establishment: The Case of Turkey
4.1. TS 825 Thermal Insulation Rules in Buildings
4.2. Issuing of EPC in Turkey
- Buildings where production activities are carried out in industrial areas;
- Buildings designated with less than two years of lifetime for use;
- Buildings with less than 50 m2 in total area;
- Agricultural buildings, greenhouses, and ateliers;
- Buildings built as single blocks do not require heating or cooling, including depots, warehouses, armouries, barns, etc.;
- All buildings in service for the Turkish Armed Forces, Ministry of Civil Defense and National Intelligence Service;
- Buildings with less than 1000 m2 and located in the outer zone of any municipality;
- Buildings in service for worship;
- Buildings used for less than four months in a year;
- Heritage architecture and buildings under conservation.
- Local climate data;
- Building geometry;
- Features of the ventilation and thermal conditions of the building;
- The internal energy gain and solar power gain for the building;
- Description and features of the building materials and units;
- Conditions of the internal comfort of the building depend on the function (the amount of ventilation, humidity and heating);
- The information on zones and zone features depends on the building typology.
5. Findings of the EPC Case of Turkey and Recommendations
5.1. Status-Quo of EPC in Turkey and Models for EPC Scores
5.2. Recommendations for the EPC System in Turkey
5.2.1. Problems in the EPC System and Calculation
5.2.2. Problems in the Process of Issuing and Audit
5.2.3. Perspective on the EPC System in the Building Sector
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
Categories of Cities and Some Municipalities for Daylight/Climate Differences in EPC |
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Appendix B
Appendix C
Building Types | Function/Use | 1. Degree Heating Zone | 2. Degree Heating Zone | 3. Degree Heating Zone | 4. Degree Heating Zone |
Residences: | Single-family houses Twin family houses | 165 | 240 | 285 | 420 |
Multistorey Apartment blocks | 180 | 255 | 300 | 435 | |
Service buildings: | Office and Bureau buildings | 240 | 300 | 360 | 495 |
Education buildings (Schools, Dormitories, Spor complexes etc.) | 180 | 255 | 300 | 450 | |
Health facilities (Hospitals, Nursing homes, Orphanages etc.) | 600 | ||||
Business buildings: | Hotels, restaurants etc. | 540 | |||
Shopping malls | 750 |
Appendix D
Energy Performance Category | Energy Index Based on the Primary Energy Consumption (EI) |
A | EI < 0.4 × RI |
B | 0.4 × RI ≤ EI < 0.8 × RI |
C | 0.8 × RI ≤ EI < RI |
D | RI ≤ EI < 1.20 × RI |
E | 1.20 × RI ≤ EI < 1.40 × RI |
F | 1.40 × RI ≤ EI < 1.75 × RI |
G | 1.75 × RI ≤ EI |
Appendix E
Energy Efficiency Class | Limit Values for Energy Consumption for Heating EUH (kWh/m2) | ||
A | EUH≤ | 45 | |
B | 45 | <EUH≤ | 65 |
C | 65 | <EUH≤ | 95 |
D | 95 | <EUH≤ | 130 |
E | 130 | <EUH≤ | 185 |
F | 185 | <EUH≤ | 265 |
G | 265 | <EUH≤ |
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Profession | Company | Role in EPC System | City | |
---|---|---|---|---|
1 | Engineer | Private | Issuer | Bursa |
2 | Engineer | Private | Issuer | Bursa |
3 | Architect | Private | Obtainer | Bursa |
4 | Architect | Private | Obtainer | Bursa |
5 | Engineer | Public (Municipal) | Auditor | Kocaeli |
6 | Engineer | Public (Municipal) | Auditor | Kocaeli |
7 | Engineer | Public (Ministry) | Establisher | Ankara |
8 | Engineer | Public (Ministry) | Establisher | Ankara |
Regulation/Law Name | Date Enacted |
---|---|
Environment Law | 11 August 1983 |
Energy Efficiency Law | 2 May 2007 |
Central Heating and Hot-water Disperse Regulation | 14 April 2008 |
Building Energy Performance Regulation | 5 December 2008 |
Regulation on Energy Resources and Increasing Efficiency in Energy Use | 27 October 2011 |
Building Materials Regulation | 10 July 2013 |
TSE 825 Thermal Insulation Rules in Buildings | 18 December 2013 |
National Energy Performance Calculation Method in Buildings | 1 November 2017 |
UD W/m2·K | UT W/m2·K | Ut W/m2·K | UP W/m2·K | |
---|---|---|---|---|
Zone 1 | 0.70 | 0.45 | 0.70 | 2.4 |
Zone 2 | 0.60 | 0.40 | 0.60 | 2.4 |
Zone 3 | 0.50 | 0.30 | 0.45 | 2.4 |
Zone 4 | 0.40 | 0.25 | 0.40 | 2.4 |
Status of the Building | EPC Classification | ||||
---|---|---|---|---|---|
A | B | C | D | Total | |
Existing Building | 70 | 50,711 | 184,562 | 72,842 | 345,967 |
New building | 3493 | 317,202 | 816,744 | - | 1,123,065 |
EPC Classification | Total for Years between | 2023 * | ||
---|---|---|---|---|
4 July 2011–31 December 2022 | January | February | March | |
A | 3609 | 9 | 6 | 5 |
B | 338,279 | 2237 | 1613 | 2388 |
C | 988,624 | 5924 | 4445 | 5544 |
D | 76,699 | 80 | 75 | 80 |
E | 26,777 | 49 | 35 | 46 |
F | 10,423 | 9 | 9 | 13 |
G | 2024 | 0 | 0 | 0 |
System | Case Study 1 Office Building | Case Study 2 Detached House | Case Study 3 Multi-Family Apartment |
---|---|---|---|
Heating | A (Boiler assisted Heat pumping—Natural gas sourced) | C (advanced condensing boiler—Natural Gas) | D (Fossil fuel boiler-coal sourced) |
Hot water | A (Heat pumping—Electric) | D (advanced condensing boiler—Natural Gas) | D (Fossil fuel boiler-coal sourced) |
Cooling | D (Central air cooling) | F (Split system) | C (Split system) |
Ventilation | G (Supply and exhaust system) | D (System N.A) | D (System N.A) |
Lightning | B (Compact fluorescent + fluorescent) | C (Compact fluorescent) | G (Compact fluorescent + fluorescent + Incandescent light bulb) |
Co-generation | Not applied | Not applied | Not applied |
Photovoltaic | 142 sqm | Not applied | Not applied |
Total Score BEP-TR | A | C | D |
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Yilmaz, D.G.; Cesur, F. A Study for the Improvement of the Energy Performance Certificate (EPC) System in Turkey. Sustainability 2023, 15, 14074. https://doi.org/10.3390/su151914074
Yilmaz DG, Cesur F. A Study for the Improvement of the Energy Performance Certificate (EPC) System in Turkey. Sustainability. 2023; 15(19):14074. https://doi.org/10.3390/su151914074
Chicago/Turabian StyleYilmaz, Didem Gunes, and Fatma Cesur. 2023. "A Study for the Improvement of the Energy Performance Certificate (EPC) System in Turkey" Sustainability 15, no. 19: 14074. https://doi.org/10.3390/su151914074
APA StyleYilmaz, D. G., & Cesur, F. (2023). A Study for the Improvement of the Energy Performance Certificate (EPC) System in Turkey. Sustainability, 15(19), 14074. https://doi.org/10.3390/su151914074