PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Green buildings in pursuit of healthy and safe human living environment

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Emission of harmful substances into the atmosphere resulting from the combustion of fuels in the energy production process and road traffic intensity are a key determinants of poor air quality in cities and the creation of an unfriendly environment for people to live in, which has a significant impact on their safety and health. The first step to reducing emissions is to reduce energy consumption. The ecological effect resulting from the thermal modernization of existing residential building stock was estimated. Nature-based solutions were proposed to compensate for the lost green areas in favor of gray infrastructure in the form of green roofs and walls. The possibility of improving environmental conditions by introducing this type of solutions into the urban tissue was assessed. Depending on the type of vegetation, one m2 of green cover is able to absorb an average of 2.3 kg of CO2 and 0.2 kg of particulate matter from the air per year. Renewable energy sources are an important element of green buildings. Heat pump may be the most advantageous solution in minimizing emissions combined with low operating costs. Obtaining energy from geothermal sources would be equally beneficial in terms of reducing emissions, but there are risks changes in groundwater levels or soil damage. Solar energy is one of the leading renewable energy sources, especially in hot water installations, where it is possible to reduce energy consumption by up to 50%.
Wydawca
Rocznik
Strony
204--211
Opis fizyczny
Bibliogr. 34 poz., tab.
Twórcy
  • Technical University of Košice, Slovakia
  • Kyiv National University of Construction and Architecture, Ukraine
autor
  • Czestochowa University of Technology, Poland
  • Lviv Polytechnic National University, Ukraine
  • Technical University of Košice, Slovakia
Bibliografia
  • 1. Azkorra-Larrinaga, Z., Erkoreka-González, A., Martín-Escudero, K., Pérez-Iribarren, E., Romero-Antón, N., 2023. Thermal characterization of a modular living wall for improved energy performance in buildings, Building and Environment, 234, 110102, DOI: 10.1016/j.buildenv.2023.110102.
  • 2. Čákyová, K., Vertal, M., Vargová, A., Vranayová, Z., Lis, A., 2023.Transforming urban areas in accordance with the principles of Nature-Based Solutions, Construction of Optimized Energy Potential, 12, 94-106, DOI: 10.17512/bozpe.2023.12.11.
  • 3. Cardinali, M., Balderrama, A., Arztmann, D., Pottgiesser, U., 2023. Green walls and health: An umbrella review, Nature-Based Solutions, 3, 100070, DOI: 10.1016/j.nbsj.2023.100070.
  • 4. Cilliers, E. J., Ghosh, S., Ndaguba, E. A., 2023. Reclaiming Healthy Cities Through Nature-Based Planning Solutions. In: Biloria, N., Sebag, G., Robertson, H. (eds) The Empathic City. An Urban Health and Wellbeing Perspective, Springer, Cham.
  • 5. Doan, D.T., Kumarasiri, B., Ghaffarian Hoseini, A., 2023. Green Building. In: Brinkmann, R., (eds.) The Palgrave Handbook of Global Sustainability. Palgrave Macmillan, Cham.
  • 6. EEA European Environment Agency. Available with: www.eea.europa.eu (24.11.2023).
  • 7. El Badaoui, M., Touzani, A, 2022. AHP QFD methodology for a recycled solar collector, Production Engineering Archives, 28(1), 30-39, DOI: 10.30657/pea.2022.28.04.
  • 8. Energy. European Commission, Available with: https://ec.europa.eu/energy/ (24.11.2023).
  • Energy from renewable sources, 2022. Statistics Poland, Warsaw.
  • 9. European Commission, 2020. A Renovation Wave for Europe - greening our buildings, creating jobs, improving lives, COM 662.
  • 10. Fonseca, F, Paschoalino, M, Silva, L., 2023. Health and Well-Being Benefits of Outdoor and Indoor Vertical Greening Systems: A Review, Sustainability, 15(5), 4107, DOI: 10.3390/su15054107.
  • 11. Idzikowski, A., Cierlicki, T., 2021. Economy and energy analysis in the operation of renewable energy installations - a case study, Production Engineering Archives, 27(2), 90-99, DOI: 10.30657/pea.2021.27.11.
  • 12. Knut, P., Kocúrková, M., Vranayová Z., 2023. Biosolar panels: An innovative solution for sustainable construction, Construction of Optimized Energy Potential, 12, 172-181, DOI: 10.17512/bozpe.2023.12.19.
  • 13. Kuok Ho, D. T., 2023. Green walls as mitigation of urban air pollution: A review of their effectiveness, Research in Ecology, 2(5), 5710, DOI:10.30564/re.v5i2.5710.
  • 14. Kuzior, A., Vyshnevskyi, O., Trushkina, N., 2022. Assessment of the impact of digitalization on greenhouse gas emissions on the example of EU Member States. Production Engineering Archives, 28(4), 407-419, DOI: 10.30657/pea.2022.28.50.
  • 15. Lis, A., Savchenko O., 2022. Possibilities of using the energy potential of geothermal waters in the case of Poland and Ukraine, Construction of Optimized Energy Potential, 11, 181 - 194, DOI: 10.17512/bozpe.2022.11.21.
  • 16. Long-term building renovation strategy, 2022. Council of Ministers, Warsaw.
  • 17. National Census of Population and Housing from 2011, 2013. Statistics Poland, Warsaw.
  • 18. Pongkua, W., Sriprapat, W., Thiravetyan, P., Treesubsuntorn, Ch., 2023. Active living wall
  • for particulate matter and VOC remediation: potential and application, Environmental Science and Pollution Research, 30, 37428325, DOI: 10.1007/s11356-023-28480-2.
  • 19. Savchenko, O., Lis, A., 2021. Efficiency of solar energy use in domestic hot water systems in Poland, Construction of Optimized Energy Potential, 10(2), 45-52, DOI: 10.17512/bozpe.2021.10.06.
  • 20. Shapoval, S., Zhelyh, V., Venhryn, I., Myroniuk, K., Hensetskyy, M., 2020. Examination of the thermal efficiency of the solar collector integrated into the light transparent building façade, Theory and Building Practice, 2(1), 30-37, DOI: 10.23939/jtbp2020.01.030.
  • 21. Sonkar, A., Kumar, M., Gupta, R., Dixit, D., Rahul, R., 2023. Review on green building, International Journal of Scientific Research in Engineering and Management, 7(4), DOI: 10.55041/IJSREM18766.
  • 22. Srbinovska, M.; Andova, V.; Mateska, A.; Krstevska, M., 2021. The effect of small green walls on reduction of particulate matter concentration in open areas, Journal of Cleaner Production, 279, 123306, DOI: 10.1016/j.jclepro.2020.123306.
  • 23. Tan, T., Kong, F., Yin, H., Cook, L. M., Middel, A, Yang, S., 2023. Carbon dioxide reduction from green roofs: A comprehensive review of processes, factors, and quantitative methods, Renewable and Sustainable Energy Reviews, 182, 113412, DOI: 10.1016/j.rser.2023.113412.
  • 24. Tkachenko, T., Mileikovskyi, V., Hunchenko, O., 2019a. Assessment of energy savings and indirect reduction of CO2 emissions by vertical gardening, Ventilation Illumination and Heat Gas Supply, 31, 16-23, DOI: 10.32347/2409-2606.2019.31.16-23.
  • 25. Tkachenko, T., Mileikovskyi, V., Ujma, A., 2019b. Field Study of Air Quality Improvement by a “Green Roof” in Kyiv, System Safety: Human - Technical Facility - Environment, CzOTO, 1(1), 419-424, DOI: 10.2478/czoto-2019-0054.
  • 26. Venuh, Z., Thaneshwari, T., Raut, S., Kombey, P., 2023. Green wall for healthy and sustainable urban society: A review, Journal of the Greens and Gardens, 5(15-16), 1-9.
  • 27. Vera, S., Viecco, M., Jorquera, H., 2021. Effects of biodiversity in green roofs and walls on the capture of fine particulate matter, Urban Forestry & Urban Greening, 63, 127229, DOI: 10.1016/j.ufug.2021.127229.
  • 28. Voznyak, O., Spodyniuk, N., Antypov, I., Dudkiewicz, E., Kasynets, M., Savchenko, O., Tarasenko, S., 2023. Efficiency Improvement of Eco-Friendly Solar Heat Supply System as a Building Coating, Sustainability, 15(3), 2831, DOI: 10.3390/su15032831.
  • 29. Vranay, F., Vranayova, Z., Lis. A., 2021. Building´s heat potential on resources in respect to CO2 emissions and primary energy reduction, Materials Science and Engineering, 1203, 022139, DOI: 10.1088/1757-899X/1203/2/022139.
  • 30. WHO World Health Organization, 2023. Air quality and health, WHO, Geneva.
  • 31. World Green Building Trends, 2021. Dodge Construction Network Research, Bedford.
  • 32. World Air Quality Report 2022, 2023.IQAir, Goldach.
  • 33. Ysebaert, T., Koch, K., Samson, R. & Denys, S., 2021. Green walls for mitigating urban particulate matter pollution. A review, Urban Forestry & Urban Greening, 59, 127014, DOI: 10.1016/j.ufug.2021.127014.
  • 34. Zhelykh, V., 2023. Characteristics of heat exchange in the energy-efficient exterior wall of a passive house, Construction of Optimized Energy Potential, 12, 143-153, DOI: 10.17512/bozpe.2023.12.16.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-c69ce1ec-92c7-4b5e-8975-792eda1c7d87
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.