METHODS FOR DESIGNING RESIDENTIAL BUILDINGS IN CONDITIONS OF AUTONOMOUS ENERGY SUPPLY IN AN URBAN ENVIRONMENT

The article considers modern methods of designing residential buildings in conditions of autonomous energy supply in a dense urban environment. The influence of urban planning restrictions, building density and climatic factors on the choice of architectural and planning and engineering solutions is analyzed. Particular attention is paid to the integration of renewable energy sources, in particular solar panels, heat pumps and energy storage systems. Methods of optimizing energy consumption through passive design, increasing the thermal insulation characteristics of enclosing structures and using energy-efficient engineering systems are considered. An integrated approach to the design of residential buildings with autonomous energy supply is proposed, which allows to increase the reliability, environmental friendliness and economic efficiency of the operation of objects in urban conditions.

Filonenko O.I. (2022). Modern architecture and energy efficiency. Collection of scientific papers of the Ukrainian State University of Railway Transport. 27-35. URL:http://nbuv.gov.ua/UJRN/Znpudazt_2022_202_6.
https://doi.org/10.18664/1994-7852.202.2022.273592
Bibri S.E., Krogstie J. (2020). Environmentally data-driven smart sustainable cities: applied innovative solutions for energy efficiency, pollution reduction, and urban metabolism. Energy Inform 3, 29. URL: https://doi.org/10.1186/s42162-020-00130-8
https://doi.org/10.1186/s42162-020-00130-8
Carter V., Henríquez C. (2021). Biophilic Institutions and Governance: Biophilic Urbanism Initiatives (BUIs) Fostering Green Urban Features in Emerging and Developing Cities. In: Trapani, F., Mohareb, N., Rosso, F., Kolokotsa, D., Maruthaveeran, S., Ghoneem, M. (eds) Advanced Studies in Efficient Environmental Design and City Planning. Advances in Science, Technology & Innovation. Springer, Cham. URL: https://doi.org/10.1007/978-3-030-65181-7_29
https://doi.org/10.1007/978-3-030-65181-7_29
Sun Z., Sun Y., Liu H. et al. (2023). Impact of spatial imbalance of green technological innovation and industrial structure upgradation on the urban carbon emission efficiency gap. Stoch Environ Res Risk Assess, 37, 2305-2325. URL: https://doi.org/10.1007/s00477-023-02395-3
https://doi.org/10.1007/s00477-023-02395-3
Lozinsky R. (2020). Landscape semiotics and visual / textual analysis in AngloAmerican cultural geography. Journal of Human Geography, 28, 25-34. URL: https://doi.org/10.26565/2076-1333-2020-28-03
https://doi.org/10.26565/2076-1333-2020-28-03
Mels T. (2021). Producing landscapes of environmental justice: exploitation of woodlands and wetlands and deep historical geographies of justice on Gotland. Landscape Ecol. URL: https://doi.org/10.1007/s10980-021-01284-w
https://doi.org/10.1007/s10980-021-01284-w
Vilinska L.M., Burlak G. M., Gurska A. V. (2023). Energy efficiency of an apartment building. Ukrainian Journal of Construction and Architecture, № 3, 28-33. URL: http://nbuv.gov.ua/UJRN/ujba_2023_3_6.
https://doi.org/10.30838/J.BPSACEA.2312.140723.28.951
Farenyuk G.G., Farenyuk E.G. (2023). Implementation of the parametric method in modern standards for the energy efficiency of buildings. Science and Construction, № 1, 3-8. URL: http://nbuv.gov.ua/UJRN/ntab_2023_1_2.
Daradkeh L., Gharaibih S., Shawaqfeh R., Gharaibeh A. (2021). Green Spaces and Environmental Justice: Measuring the Accessibility and Fair Distribution of Public Green Spaces in the Town of Al-Mughayyer. In: Trapani, F., Mohareb, N., Rosso, F., Kolokotsa, D., Maruthaveeran, S., Ghoneem, M. (eds) Advanced Studies in Efficient Environmental Design and City Planning. Advances in Science, Technology & Innovation. Springer, Cham. URL: https://doi.org/10.1007/978-3-030-65181-7_24
https://doi.org/10.1007/978-3-030-65181-7_24
Liang W., Ahmad Y., Mohidin H. (2023). The development of the concept of architectural heritage conservation and its inspiration. Built Heritage, 7, 21. URL: https://doi.org/10.1186/s43238-023-00103-2
https://doi.org/10.1186/s43238-023-00103-2
Pavlenko T., Ivasenko V., Koval I. (2020). Formation Methods Of Public Space During The Airport Reconstruction: Array. Municipal Economy of Cities, 6(159), 91-96. URL: https://khg.kname.edu.ua/index.php/khg/article/view/5679
https://doi.org/10.33042/2522-1809-2020-6-159-91-96
Pollo R., Giovanardi M., Mariani A. (2021). Urban Greenery as a Resource for Urban Environment. In: Trapani, F., Mohareb, N., Rosso, F., Kolokotsa, D., Maruthaveeran, S., Ghoneem, M. (eds) Advanced Studies in Efficient Environmental Design and City Planning. Advances in Science, Technology & Innovation. Springer, Cham. URL: https://doi.org/10.1007/978-3-030-65181-7_25
https://doi.org/10.1007/978-3-030-65181-7_25
Reyes-Plata J.A., Villanueva-Vilchis M.D. (2021). Understanding the Social Appropriation of Public Green Spaces in a Disadvantaged Neighbourhood. A Conceptual Model Related to Urban Sustainability. In: Trapani, F., Mohareb, N., Rosso, F., Kolokotsa, D., Maruthaveeran, S., Ghoneem, M. (eds) Advanced Studies in Efficient Environmental Design and City Planning. Advances in Science, Technology & Innovation. Springer, Cham. URL: https://doi.org/10.1007/978-3-030-65181-7_27
https://doi.org/10.1007/978-3-030-65181-7_27
Ryzhova I., Pavliuk О. (2023). Strategy For Sustainable Development Of Urban Ecology In The Modern Spatial And Subject Environment: Challenges, Opportunities, Prospects. Humanities Studies : Helvetica Publishing House, 15 (92), 180, 52- 64. URL: https://doi.org/10.32782/hst-2023-15-92-06
https://doi.org/10.32782/hst-2023-15-92-06
Pavlenko T., Lytvynenko T., Ivasenko V., Zyhun A. (2022). Design Principles for Inclusive Environment of Urban Agrorecreational Eco-complexes. In: Onyshchenko, V., Mammadova, G., Sivitska, S., Gasimov, A. (eds) Proceedings of the 3rd International Conference on Building Innovations. ICBI 2020. Lecture Notes in Civil Engineering, vol 181. Springer, Cham. URL:https://doi.org/10.1007/978-3-030- 85043-2_51
Ryzhova I., Zakharova S. (2021). «Smart-Technology» Influence On The Development Of «Smart-City» In The Information Society. ZDIA Publishing House, 72, 81-91. URL: http://vestnikzgia.com.ua/article/view/130575/126341
Li D., Lam J.C., Wong S.L. (2015). Solar potential in urban residential buildings. Solar Energy, 118, 129-143. URL: https://www.sciencedirect.com/science/article/abs/pii/S0038092X14005325
Kim J.H., Moon J.W., Jeong Y.S., Kim S. (2015). Analysis of Photovoltaic Applications in Zero Energy Building Cases of IEA SHC/EBC Task 40/Annex 52. Sustainability, 7(7), 8782-8800. URL: https://www.mdpi.com/2071-1050/7/7/8782
https://doi.org/10.3390/su7078782
Cieśliński K., Błażejczyk K., Krzyżyńska R. (2020). Evaluation of Energy Efficiency in Thermally Improved Prefabricated Buildings. Applied Sciences, 10(23), 8430. URL: https://www.mdpi.com/2076-3417/10/23/8430
https://doi.org/10.3390/app10238430
REHVA (2020). Deep energy renovation: the effect of airtightness and heat recovery in renovation projects. REHVA Journal (web publication). URL: https://www.rehva.eu/rehva-journal/chapter/deep-energy-renovation-the-ef...