Mapping the Potential of Zero-Energy Building in Greece Using Roof Photovoltaics
Abstract
:1. Introduction
2. Materials and Methods
2.1. Description of Building
2.2. Climatic Conditions
2.3. Simulation Strategy
2.4. Basic Mathematical Formulation
3. Results
3.1. Energy Analysis of the Examined Buildings in Different Locations
3.2. Analysis of PV Electrical Production Potential
4. Discussion
5. Conclusions
- Full electrification can be achieved through the installation of electrically driven air-to-air heat pumps for serving space heating and cooling and of an air source heat pump for domestic hot water preparation. The energy performance of the energy systems, as well as the heating, cooling, and domestic hot water energy demand, are mainly determined by the climatic conditions of a location.
- For Athens and the case of the three-story building, the gross electricity demand is calculated at 33.55 kWh/m2, representing an 11.5% increase compared to Chania. Conversely, for Thessaloniki, the total electricity demand is 17.9% higher than in Athens, and for Kastoria, it is 83.3% higher than in Athens.
- Zero-net-energy building transformation is feasible for fully electrified low-rise, up-to-two-story, multifamily buildings in each of the four climatic categories of Greece.
- The installation of photovoltaic systems on the available rooftop space of multifamily buildings can successfully satisfy the overall electricity demand of up to six stories for Chania, up to five stories for Athens, up to four for Thessaloniki, and up to two for Kastoria.
- Positive electricity production is restricted with the increase in stories. Greater electricity production is achieved for the milder climatic conditions of Chania, with Athens, Thessaloniki, and, lastly, Kastoria following.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
hin | Inside convection coefficient, W/m2K |
hout | Outside convection coefficient, W/m2K |
I | Current, A |
k | Thermal conductivity, W/mK |
Pel | Electrical power, W |
Q | Load, W |
t | Thickness of construction layers, m |
U-value | Thermal transmittance value, W/m2K |
V | Voltage, V |
Subscripts and superscripts | |
max | Maximum |
mpp | Maximum power point |
heat | Heating |
cool | Cooling |
oc | Open circuit |
sc | Short-circuit |
Abbreviations | |
CDDs | Cooling degree days |
COP | Coefficient of performance for heating mode |
DHW | Domestic hot water |
EER | Energy efficiency ratio for cooling mode |
HDDs | Heating degree days |
HVAC | Heating, ventilation, and air conditioning |
PED | Positive energy district |
SCOP | Seasonal coefficient of performance for heating mode |
SEER | Seasonal energy efficiency ratio for cooling mode |
Appendix A. Weather Data
Appendix B. Thermal Analysis Results
Number of Stories | Specific Heating Energy [kWh/m2] | Specific Cooling Energy [kWh/m2] | Specific Electricity for Heating [kWh/m2] | Specific Electricity for Cooling [kWh/m2] |
---|---|---|---|---|
1 | 36.39 | 20.44 | 9.86 | 4.75 |
2 | 24.27 | 20.87 | 6.71 | 4.83 |
3 | 20.01 | 21.71 | 5.58 | 5.01 |
4 | 17.91 | 22.23 | 5.02 | 5.13 |
5 | 16.67 | 22.59 | 4.69 | 5.21 |
6 | 15.87 | 22.81 | 4.48 | 5.26 |
7 | 15.32 | 22.97 | 4.33 | 5.29 |
Number of Stories | Specific Heating Energy [kWh/m2] | Specific Cooling Energy [kWh/m2] | Specific Electricity for Heating [kWh/m2] | Specific Electricity for Cooling [kWh/m2] |
---|---|---|---|---|
1 | 41.73 | 37.09 | 11.58 | 8.92 |
2 | 28.22 | 35.75 | 8.00 | 8.61 |
3 | 21.32 | 35.39 | 6.10 | 8.51 |
4 | 21.22 | 35.04 | 6.11 | 8.45 |
5 | 19.87 | 34.86 | 5.74 | 8.41 |
6 | 18.99 | 34.71 | 5.50 | 8.37 |
7 | 18.69 | 34.41 | 5.42 | 8.30 |
Number of Stories | Specific Heating Energy [kWh/m2] | Specific Cooling Energy [kWh/m2] | Specific Electricity for Heating [kWh/m2] | Specific Electricity for Cooling [kWh/m2] |
---|---|---|---|---|
1 | 61.98 | 22.77 | 20.25 | 5.45 |
2 | 45.66 | 22.64 | 14.91 | 5.43 |
3 | 39.97 | 22.66 | 13.14 | 5.44 |
4 | 37.17 | 22.64 | 12.27 | 5.44 |
5 | 35.52 | 22.59 | 11.76 | 5.43 |
6 | 34.45 | 22.55 | 11.43 | 5.42 |
7 | 33.71 | 22.49 | 11.20 | 5.41 |
Number of Stories | Specific Heating Energy [kWh/m2] | Specific Cooling Energy [kWh/m2] | Specific Electricity for Heating [kWh/m2] | Specific Electricity for Cooling [kWh/m2] |
---|---|---|---|---|
1 | 99.28 | 7.87 | 51.83 | 1.93 |
2 | 76.48 | 9.07 | 37.93 | 2.21 |
3 | 68.62 | 9.56 | 33.46 | 2.32 |
4 | 64.73 | 9.82 | 31.23 | 2.39 |
5 | 62.45 | 9.93 | 30.04 | 2.41 |
6 | 60.97 | 10.02 | 29.19 | 2.43 |
7 | 59.94 | 10.07 | 28.60 | 2.44 |
References
- Energy Statistics—An Overview. Available online: https://ec.europa.eu/eurostat/statistics-explained/index.php?title=Energy_statistics_-_an_overview (accessed on 29 March 2024).
- ODYSSEE-MURE. Final Energy Consumption by Energy Sector in EU. Available online: https://www.odyssee-mure.eu/publications/efficiency-by-sector/overview/final-energy-consumption-by-sector.html (accessed on 29 March 2024).
- National Energy Department. Statistical Data. Available online: https://ypen.gov.gr/ (accessed on 17 June 2024).
- Statista. World Electricity Consumption Share by Sector. Available online: https://www.statista.com/statistics/859150/world-electricity-consumption-share-by-sector/ (accessed on 10 April 2024).
- Kim, B.-J.; Kim, S.; Go, M.; Joo, H.-J.; Jeong, J.-W. Applicability performance evaluation of cascade heat pump for building electrification in winter. J. Build. Eng. 2024, 82, 108406. [Google Scholar] [CrossRef]
- Share of Electricity Production from Renewables. Our World in Data. Available online: https://ourworldindata.org/grapher/share-electricity-renewables (accessed on 29 March 2024).
- Hong, T.; Lee, S.H.; Zhang, W.; Sun, K.; Hooper, B.; Kim, J. Nexus of electrification and energy efficiency retrofit of commercial buildings at the district scale. Sustain. Cities Soc. 2023, 95, 104608. [Google Scholar] [CrossRef]
- Bellos, E. Progress in beam-down solar concentrating systems. Prog. Energy Combust. Sci. 2023, 97, 101085. [Google Scholar] [CrossRef]
- Li, Y.; Rosengarten, G.; Stanley, C.; Mojiri, A. Electrification of residential heating, cooling and hot water: Load smoothing using onsite photovoltaics, heat pump and thermal batteries. J. Energy Storage 2022, 56, 105873. [Google Scholar] [CrossRef]
- Eurostat. Database. Available online: https://ec.europa.eu/eurostat/data/database (accessed on 4 April 2024).
- Bódis, K.; Kougias, I.; Jäger-Waldau, A.; Taylor, N.; Szabó, S. A high-resolution geospatial assessment of the rooftop solar photovoltaic potential in the European Union. Renew. Sustain. Energy Rev. 2019, 114, 109309. [Google Scholar] [CrossRef]
- O’Connor, J. Rooftop Solar PV Country Comparison Report. CAN Europe 2022. Available online: https://caneurope.org/rooftop-solar-pv-comparison-report/ (accessed on 3 April 2024).
- Alipour, M.; Irannezhad, E.; Stewart, R.A.; Sahin, O. Exploring residential solar PV and battery energy storage adoption motivations and barriers in a mature PV market. Renew. Energy 2022, 190, 684–698. [Google Scholar] [CrossRef]
- Sagani, A.; Mihelis, J.; Dedoussis, V. Techno-economic analysis and life-cycle environmental impacts of small-scale building-integrated PV systems in Greece. Energy Build. 2017, 139, 277–290. [Google Scholar] [CrossRef]
- Arcos-Vargas, A.; Cansino, J.M.; Román-Collado, R. Economic and environmental analysis of a residential PV system: A profitable contribution to the Paris agreement. Renew. Sustain. Energy Rev. 2018, 94, 1024–1035. [Google Scholar] [CrossRef]
- Rae Website. Available online: https://www.rae.gr/ (accessed on 24 May 2024).
- Bruck, A.; Diaz Ruano, S.; Auer, H. Values and implications of building envelope retrofitting for residential Positive Energy Districts. Energy Build. 2022, 275, 112493. [Google Scholar] [CrossRef]
- HELAPCO-Hellenic Association of Photovoltaic Companies. HELAPCO-Hellenic Association of Photovoltaic Companies 2024. Available online: https://helapco.gr (accessed on 28 June 2024).
- Bastos, J.; Monforti-Ferrario, F.; Melica, G. GHG Emission Factors for Electricity Consumption; European Commission: Luxembourg, 2024. [Google Scholar]
- Statista. Greece: Solar PV Electricity Output 2013–2023. Available online: https://www.statista.com/statistics/497570/electricity-production-from-solar-in-greece/ (accessed on 28 June 2024).
- Bellos, E.; Iliadis, P.; Papalexis, C.; Rotas, R.; Mamounakis, I.; Sougkakis, V.; Nikolopoulos, N.; Kosmatopoulos, E. Holistic renovation of a multi-family building in Greece based on dynamic simulation analysis. J. Clean. Prod. 2022, 381, 135202. [Google Scholar] [CrossRef]
- Dermentzis, G.; Ochs, F.; Franzoi, N. Four years monitoring of heat pump, solar thermal and PV system in two net-zero energy multi-family buildings. J. Build. Eng. 2021, 43, 103199. [Google Scholar] [CrossRef]
- Thebault, M.; Gaillard, L. Optimization of the integration of photovoltaic systems on buildings for self-consumption–Case study in France. City Environ. Interact. 2021, 10, 100057. [Google Scholar] [CrossRef]
- Feng, X.; Ma, T.; Yamaguchi, Y.; Peng, J.; Dai, Y.; Ji, D. Potential of residential building integrated photovoltaic systems in different regions of China. Energy Sustain. Dev. 2023, 72, 19–32. [Google Scholar] [CrossRef]
- Roumpakias, E.; Zogou, O.; Stamatellou, A.-M. Optimization of Electrical and Thermal Storage in a High School Building in Central Greece. Energies 2024, 17, 1966. [Google Scholar] [CrossRef]
- Stavrakakis, G.M.; Bakirtzis, D.; Drakaki, K.K.; Yfanti, S.; Katsaprakakis, D.A.; Braimakis, K.; Langouranis, P.; Terzis, K.; Zervas, P.L. Application of the Typology Approach for Energy Renovation Planning of Public Buildings’ Stocks at the Local Level: A Case Study in Greece. Energies 2024, 17, 689. [Google Scholar] [CrossRef]
- Sougkakis, V.; Lymperopoulos, K.; Nikolopoulos, N.; Margaritis, N.; Giourka, P.; Angelakoglou, K. An Investigation on the Feasibility of Near-Zero and Positive Energy Communities in the Greek Context. Smart Cities 2020, 3, 362–384. [Google Scholar] [CrossRef]
- Vögele, S.; Poganietz, W.-R.; Kleinebrahm, M.; Weimer-Jehle, W.; Bernhard, J.; Kuckshinrichs, W.; Weiss, A. Dissemination of PV-Battery systems in the German residential sector up to 2050: Technological diffusion from multidisciplinary perspectives. Energy 2022, 248, 123477. [Google Scholar] [CrossRef]
- Christiansen, J. European Market Outlook for Residential Battery Storage. Available online: https://resource-platform.eu/wp-content/uploads/files/statements/2820-SPE-EU-Residential-Market-Outlook-07-mr.pdf (accessed on 13 April 2024).
- Orth, N.; Munzke, N.; Weniger, J.; Messner, C.; Schreier, R.; Mast, M.; Meissner, L.; Quaschnig, V. Efficiency characterization of 26 residential photovoltaic battery storage systems. J. Energy Storage 2023, 65, 107299. [Google Scholar] [CrossRef]
- Liu, J.; Ma, T.; Wu, H.; Yang, H. Study on optimum energy fuel mix for urban cities integrated with pumped hydro storage and green vehicles. Appl. Energy 2023, 331, 120399. [Google Scholar] [CrossRef]
- Forrousso, S.; Kaitouni, S.I.; Mana, A.; Wakil, M.; Jamil, A.; Brigui, J.; Azzouzi, H. Optimal sizing of off-grid microgrid Building-Integrated-Photovoltaic system with battery for a Net Zero Energy Residential Building in different climates of Morocco. Results Eng. 2024, 22, 102288. [Google Scholar] [CrossRef]
- Chreim, B.; Esseghir, M.; Merghem-Boulahia, L. Recent sizing, placement, and management techniques for individual and shared battery energy storage systems in residential areas: A review. Energy Rep. 2024, 11, 250–260. [Google Scholar] [CrossRef]
- DesignBuilder Software Ltd. DesignBuilder, Ver. 2024; DesignBuilder Ltd.: Stroud, UK, 2024. Available online: https://designbuilder.co.uk/(accessed on 17 January 2023).
- European Commission. JRC Photovoltaic Geographical Information System (PVGIS). Available online: https://re.jrc.ec.europa.eu/pvg_tools/en/#api_5.1 (accessed on 1 May 2024).
- Census Building 2011—ELSTAT. Available online: https://www.statistics.gr/census-buildings-2011 (accessed on 4 April 2024).
- TEE. Technical Guidelines of Technical Chamber of Greece. 2020. Available online: https://web.tee.gr/ (accessed on 9 January 2024).
- Kitsopoulou, A.; Bellos, E.; Sammoutos, C.; Lykas, P.; Vrachopoulos, M.G.; Tzivanidis, C. A detailed investigation of thermochromic dye-based roof coatings for Greek climatic conditions. J. Build. Eng. 2024, 84, 108570. [Google Scholar] [CrossRef]
- Kitsopoulou, A.; Bellos, E.; Lykas, P.; Vrachopoulos, M.G.; Tzivanidis, C. Multi-objective evaluation of different retrofitting scenarios for a typical Greek building. Sustain. Energy Technol. Assess. 2023, 57, 103156. [Google Scholar] [CrossRef]
- Sharp-Solar Panel. Available online: https://www.sharp.eu/solar-energy/find-a-solar-panel (accessed on 21 March 2024).
- ISO 6946:2017; Building Components and Building Elements—Thermal Resistance and Thermal Transmittance—Calculation Methods. ISO: Geneva, Switzerland, 2017. Available online: https://www.iso.org/standard/65708.html (accessed on 5 May 2024).
- Karteris, M.; Theodoridou, I.; Mallinis, G.; Papadopoulos, A.M. Façade photovoltaic systems on multifamily buildings: An urban scale evaluation analysis using geographical information systems. Renew. Sustain. Energy Rev. 2014, 39, 912–933. [Google Scholar] [CrossRef]
- Sassenou, L.-N.; Olivieri, L.; Olivieri, F. Challenges for positive energy districts deployment: A systematic review. Renew. Sustain. Energy Rev. 2024, 191, 114152. [Google Scholar] [CrossRef]
- Sassenou, L.-N.; Olivieri, F.; Civiero, P.; Olivieri, L. Methodologies for the design of Positive Energy Districts: A scoping literature review and a proposal for a new approach (PlanPED). Build. Environ. 2024, 260, 111667. [Google Scholar] [CrossRef]
- Zhang, X.; Penaka, S.R.; Giriraj, S.; Sánchez, M.N.; Civiero, P.; Vandevyvere, H. Characterizing Positive Energy District (PED) through a Preliminary Review of 60 Existing Projects in Europe. Buildings 2021, 11, 318. [Google Scholar] [CrossRef]
- CORDIS; European Commission. Rotterdam, Umea and Glasgow: Generating Exemplar Districts In Sustainable Energy Deployment|Ruggedised Project|Fact Sheet|H2020. Available online: https://cordis.europa.eu/project/id/731198 (accessed on 30 May 2024).
- POCITYF-POCITYF. Homepage. Available online: https://pocityf.eu/ (accessed on 30 May 2024).
- Energy Cities. Smart Together. Available online: https://energy-cities.eu/project/smarter-together/ (accessed on 30 May 2024).
- Ascione, F.; Bianco, N.; Mauro, G.M.; Napolitano, D.F. Retrofit of villas on Mediterranean coastlines: Pareto optimization with a view to energy-efficiency and cost-effectiveness. Appl. Energy 2019, 254, 113705. [Google Scholar] [CrossRef]
- Kitsopoulou, A.; Bellos, E.; Lykas, P.; Sammoutos, C.; Vrachopoulos, M.G.; Tzivanidis, C. A Systematic Analysis of Phase Change Material and Optically Advanced Roof Coatings Integration for Athenian Climatic Conditions. Energies 2023, 16, 7521. [Google Scholar] [CrossRef]
- Braulio-Gonzalo, M.; Bovea, M.D.; Ruá, M.J.; Juan, P. A methodology for predicting the energy performance and indoor thermal comfort of residential stocks on the neighbourhood and city scales: A Case Study Spain. J. Clean. Prod. 2016, 139, 646–665. [Google Scholar] [CrossRef]
- Ministry of Environment and Energy. Energy Inspections of Buildings, Statistical Analysis for the Year 2021 and the Period 2011–2019 06/20220; Ministry of Environment and Energy: Athens, Greece, 2016. Available online: https://bpes.ypeka.gr/wp-content/uploads/TRANSLATION.11.04.2016.pdf (accessed on 1 April 2024).
- Greece 2.0-National Recovery and Resilience Plan. Available online: https://greece20.gov.gr/ (accessed on 28 June 2024).
- European Commission. €1 billion Greek State Aid. Available online: https://ec.europa.eu/commission/presscorner/detail/en/ip_24_1765 (accessed on 28 June 2024).
- Inforegio—Connecting Greece’s Cyclades Islands to the Mainland’s Power Grid. Available online: https://ec.europa.eu/regional_policy/en/projects/greece/connecting-greece-s-cyclades-islands-to-the-mainland-s-power-grid (accessed on 28 June 2024).
- Makrygiorgou, J.J.; Karavas, C.-S.; Dikaiakos, C.; Moraitis, I.P. The Electricity Market in Greece: Current Status, Identified Challenges, and Arranged Reforms. Sustainability 2023, 15, 3767. [Google Scholar] [CrossRef]
Building Construction | Chania (Zone A) | Athens (Zone B) | Thessaloniki (Zone C) | Kastoria (Zone D) |
---|---|---|---|---|
External walls | 0.55 | 0.45 | 0.40 | 0.35 |
Roof slab | 0.45 | 0.40 | 0.35 | 0.30 |
Ground slab | 1.10 | 0.80 | 0.65 | 0.60 |
Windows | 2.80 | 2.60 | 2.40 | 2.20 |
Floors | Mean U-Value [W/m2K] | Outer Surface/Volume [m2/m3] | Window Area [%] | |||
---|---|---|---|---|---|---|
Chania | Athens | Thessaloniki | Kastoria | |||
1 | 0.67 | 0.56 | 0.50 | 0.44 | 0.95 | 27.4 |
2 | 0.76 | 0.65 | 0.57 | 0.51 | 0.64 | 40.8 |
3 | 0.80 | 0.69 | 0.62 | 0.56 | 0.53 | 48.8 |
4 | 0.84 | 0.72 | 0.65 | 0.58 | 0.48 | 54.0 |
5 | 0.86 | 0.75 | 0.67 | 0.60 | 0.45 | 57.8 |
6 | 0.88 | 0.76 | 0.69 | 0.62 | 0.43 | 60.6 |
7 | 0.89 | 0.78 | 0.70 | 0.63 | 0.41 | 62.8 |
Parameters | Values |
---|---|
Gross treated floor area per story [m2] | 150 |
Occupancy [persons/apartment] | 3 |
Occupant load [W/person] | 80 |
Lighting specific load [W/m2] | 4 |
Lighting operation fraction [%] | 50 |
Appliances specific load [W/m2] | 2 |
Appliances operation fraction [%] | 50 |
DHW daily demand [liters/person] | 50 |
DHW temperature set-point [°C] | 45 |
Heating temperature set-point [°C] | 20 |
Heating temperature set-point [°C] | 26 |
Nominal COP/EER for heating/cooling mode | 4.0 |
Parameters | Values |
---|---|
Maximum power, Pmax [W] | 360 |
Open-circuit voltage, Voc [V] | 47.2 |
Short-circuit current, Isc [A] | 9.79 |
Voltage at point of maximum power, Vmpp [V] | 38.9 |
Current at point of maximum power, Impp [A] | 9.26 |
Module reference efficiency, η [%] | 18.5 |
Module length [m] | 1.956 |
Module width [m] | 0.922 |
Nominal operating cell temperature [°C] | 44 |
Temperature coefficient of Pmax [%/°C] | −0.39 |
Temperature coefficient of Voc [%/°C] | −0.29 |
Temperature coefficient of Isc [%/°C] | 0.05 |
City | HDDs | CDDs | Mean Yearly Temperature [°C] | Mean Yearly Water Temperature [°C] | Horizontal Irradiation [kWh/m2] | Optimum PV Panel Slope [°] | Maximum PV Panel Irradiation [kWh/m2] |
---|---|---|---|---|---|---|---|
Chania | 648 | 308 | 18.3 | 18.6 | 1831 | 28 | 2009 |
Athens | 1041 | 588 | 18.0 | 17.8 | 1833 | 33 | 2081 |
Thessaloniki | 1793 | 314 | 15.0 | 15.6 | 1648 | 35 | 1904 |
Kastoria | 2726 | 134 | 11.6 | 13.7 | 1580 | 34 | 1808 |
Number of Floors | |||||||
---|---|---|---|---|---|---|---|
Parameters | 1 | 2 | 3 | 4 | 5 | 6 | 7 |
Chania | |||||||
Gross electricity demand [kWh] | 5054 | 9188 | 13,358 | 17,544 | 21,741 | 25,943 | 30,147 |
Electrical positivity [kWh] | 22,044 | 17,910 | 13,741 | 9554 | 5357 | 1155 | 0 |
Athens | |||||||
Gross electricity demand [kWh] | 5987 | 10,808 | 15,097 | 20,380 | 25,167 | 29,955 | 34,781 |
Electrical positivity [kWh] | 19,534 | 14,713 | 10,424 | 5141 | 354 | 0 | 0 |
Thessaloniki | |||||||
Gross electricity demand [kWh] | 7000 | 12,395 | 17,799 | 23,213 | 28,624 | 34,043 | 39,462 |
Electrical positivity [kWh] | 17,730 | 12,334 | 6931 | 1517 | 0 | 0 | 0 |
Kastoria | |||||||
Gross electricity demand [kWh] | 11,919 | 19,753 | 27,667 | 35,594 | 43,615 | 51,595 | 59,592 |
Electrical positivity [kWh] | 12,719 | 4885 | 0 | 0 | 0 | 0 | 0 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Kitsopoulou, A.; Pallantzas, D.; Bellos, E.; Tzivanidis, C. Mapping the Potential of Zero-Energy Building in Greece Using Roof Photovoltaics. Designs 2024, 8, 68. https://doi.org/10.3390/designs8040068
Kitsopoulou A, Pallantzas D, Bellos E, Tzivanidis C. Mapping the Potential of Zero-Energy Building in Greece Using Roof Photovoltaics. Designs. 2024; 8(4):68. https://doi.org/10.3390/designs8040068
Chicago/Turabian StyleKitsopoulou, Angeliki, Dimitris Pallantzas, Evangelos Bellos, and Christos Tzivanidis. 2024. "Mapping the Potential of Zero-Energy Building in Greece Using Roof Photovoltaics" Designs 8, no. 4: 68. https://doi.org/10.3390/designs8040068
APA StyleKitsopoulou, A., Pallantzas, D., Bellos, E., & Tzivanidis, C. (2024). Mapping the Potential of Zero-Energy Building in Greece Using Roof Photovoltaics. Designs, 8(4), 68. https://doi.org/10.3390/designs8040068