Role of urban green spaces and tree plantations in improving ecosystem services and urban resilience

Ermir Shahini, Elti Shahini
Abstract

The study aimed to quantify the impact of urban green spaces on air quality, microclimate and climate resilience of cities. The study analysed the impact of urban green spaces on air quality, microclimate regulation and increasing the resilience of urban areas to climate threats. The article conducted a comprehensive analysis of the existing green areas in the five largest cities of Albania: Tirana, Durres, Shkoder, Vlora and Elbasan. To assess the ecosystem services of green spaces, measurements of the concentration of pollutants (CO₂, NO₂, SO₂, CO, PM2.5, PM10), temperature, humidity, and the soil composition and its ability to retain pollutants were analysed. The results showed that in areas with a high density of greenery, NO₂ and PM2.5 concentrations were reduced by 30-50%, indicating a significant air filtration capacity of trees. Temperature measurements demonstrated that park areas had 4-7°C lower temperatures than densely built-up areas, confirming their role in mitigating the urban heat island effect. In addition, soil analysis revealed a 15-25% reduction in Pb, Cd and Hg, which demonstrates the green areas’ ability to naturally cleanse the environment. The green areas also retained 20-40% of precipitation, reducing the risk of flooding and increasing the water-holding capacity of the soil. The findings of the study highlight the need to integrate nature-based solutions into the urban management system to improve the sustainability of the urban environment. The data obtained can be used to develop recommendations for sustainable urban planning and justifying environmentally oriented approaches to the development of urban areas

Keywords

atmospheric pollution, air filtration, natural solutions, landscape planning, soil protection

Suggested citation
Shahini, E., & Shahini, E. (2025). Role of urban green spaces and tree plantations in improving ecosystem services and urban resilience. Ukrainian Journal of Forest and Wood Science, 16(2), 136-151. https://doi.org/10.31548/forest/2.2025.136
References
  1. Ademi, J. (2021). Enhancing the ecosystem services within the urban public nodes in support of regenerative urban built environments in Tirana. Tirana: Epoka University.
  2. Aimar, F., & Xhexhi, K. (2024). Urban heat islands in Tirana, Albania. Analysis and potential solutions. Engineering Innovations, 8, 3-15. doi: 10.4028/p-fEEwg7.
  3. Belaire, J.A., Higgins, C., Zoll, D., Lieberknecht, K., Bixler, R.P., Neff, J.L., Keitt, T.H., & Jha, S. (2022). Fine-scale monitoring and mapping of biodiversity and ecosystem services reveals multiple synergies and few tradeoffs in urban green space management. Science of the Total Environment, 849, article number 157801. doi: 10.1016/j.scitotenv.2022.157801.
  4. Bikomeye, J.C., et al. (2021). Resilience and equity in a time of crises: Investing in public urban greenspace is now more essential than ever in the US and beyond. International Journal of Environmental Research and Public Health, 18(16), article number 8420. doi: 10.3390/ijerph18168420.
  5. Bollano, S. (2024). The study of “Cities of the Future” urban planning and development decision-making experience. Architectural Studies, 10(1), 47-57. doi: 10.56318/as/1.2024.47.
  6. Bush, J., Ashley, G., Foster, B., & Hall, G. (2021). Integrating green infrastructure into urban planning: Developing Melbourne’s green factor tool. Urban Planning, 6(1), 20-31. doi: 10.17645/up.v6i1.3515.
  7. Caprioli, C., Oppio, A., Baldassarre, R., Grassi, R., & Dell’Ovo, M. (2021). A multidimensional assessment of ecosystem services: From grey to green infrastructure. In O. Gervasi, B. Murgante, S. Misra, C. Garau, I. Blečić, D. Taniar, B.O. Apduhan, A.M.A.C. Rocha, E. Tarantino & C.M. Torre (Eds.), 21st international conference: Computational science and its applications – ICCSA 2021 (pp. 569-581). Cham: Springer. doi: 10.1007/978-3-030-87007-2_41.
  8. Castelli, K.R., Silva, A.M., & Dunning, J. B. (2021). Improving the biodiversity in urban green spaces: A nature based approach. Ecological Engineering, 173, article number 106398. doi: 10.1016/j.ecoleng.2021.106398.
  9. Cheng, Y., Farmer, J.R., Dickinson, S.L., Robeson, S.M., Fischer, B.C., & Reynolds, H.L. (2021). Climate change impacts and urban green space adaptation efforts: Evidence from US municipal parks and recreation departments. Urban Climate, 39, article number 100962. doi: 10.1016/j.uclim.2021.100962.
  10. Climate and average weather year round in Durrës Albania. (n.d.). Retrieved from https://weatherspark.com/y/84390/Average-Weather-in-Durr%C3%ABs-Albania-Year-Round.
  11. Evans, D.L., Falagán, N., Hardman, C.A., Kourmpetli, S., Liu, L., Mead, B.R., & Davies, J.A.C. (2022). Ecosystem service delivery by urban agriculture and green infrastructure – a systematic review. Ecosystem Services, 54, article number 101405. doi: 10.1016/j.ecoser.2022.101405.
  12. Hopkins, L.P., January‐Bevers, D.J., Caton, E.K., & Campos, L.A. (2022). A simple tree planting framework to improve climate, air pollution, health, and urban heat in vulnerable locations using non‐traditional partners. Plants, People, Planet, 4(3), 243-257. doi: 10.1002/ppp3.10245.
  13. Krivtsov, V., Forbes, H., Birkinshaw, S., Olive, V., Chamberlain, D., Buckman, J., Yahr, R., Arthur, S., Christie, D., Monteiro, Y., & Diekonigin, C. (2022). Ecosystem services provided by urban ponds and green spaces: A detailed study of a semi-natural site with global importance for research. Blue-Green Systems, 4(1), 1-23. doi: 10.2166/bgs.2022.021.
  14. Kunakh, O.M., Yorkina, N.V., Turovtseva, N.M., Bredikhina, J.L., Balyuk, J.O., & Golovnya, A.V. (2021). Effect of urban park reconstruction on physical soil propertiesEcologia Balkanica, 13(2), 57-73.
  15. Lehmann, S. (2021). Growing biodiverse urban futures: Renaturalization and rewilding as strategies to strengthen urban resilience. Sustainability, 13(5), article number 2932. doi: 10.3390/su13052932.
  16. Lipińska, H., Shuvar, I., Lipiński, W., Kamińska, W., & Korpita, H. (2023). The content of mineral nitrogen in a 0-30 cm soil layer as an indicator of ecosystem services: А case study of grasslands. Plant and Soil Science, 14(4), 45-60. doi: 10.31548/plant4.2023.45.
  17. Martin, W.C., & Wiese, W.L. (1996). Atomic spectroscopy. In C.W.F. Drake (Ed.), Atomic, molecular, & optical physics handbook (pp. 131-153). Woodbury: American Institute of Physics.
  18. McCarthy, L.J., & Russo, A. (2023). Exploring the role of nature-based typologies and stewardship schemes in enhancing urban green spaces: Citizen perceptions of landscape design scenarios and ecosystem services. Journal of Environmental Management, 346, article number 118944. doi: 10.1016/j.jenvman.2023.118944.
  19. McPhearson, T., et al. (2022). A social-ecological-technological systems framework for urban ecosystem services. One Earth, 5(5), 505-518. doi: 10.1016/j.oneear.2022.04.007.
  20. Moskalchuk, N., & Orfanova, M. (2024). Greening of territories in the system of planning and improvement of the city of Ivano-Frankivsk. Ecological Safety and Balanced Use of Resources, 15(1), 75-86. doi: 10.69628/esbur/1.2024.75.
  21. Nissim, W.G., Castiglione, S., Guarino, F., Pastore, M.C., & Labra, M. (2023). Beyond cleansing: Ecosystem services related to phytoremediation. Plants, 12(5), article number 1031. doi: 10.3390/plants12051031.
  22. Pandey, B., & Ghosh, A. (2023). Urban ecosystem services and climate change: A dynamic interplay. Frontiers in Sustainable Cities, 5, article number 1281430. doi: 10.3389/frsc.2023.1281430.
  23. Pereira, P., Yin, C., & Hua, T. (2023). Nature-based solutions, ecosystem services, disservices, and impacts on well-being in urban environments. Current Opinion in Environmental Science & Health, 33, article number 100465. doi: 10.1016/j.coesh.2023.100465.
  24. Plaku, R. (2022). Greenification of dense neighborhoods through pocket parks - Inspiring small spaces to transform cities: the case study of Tirana, Albania. In A.L. Pisello, I. Pigliautile, S.S.Y. Lau & N.M. Clark (Eds.), Building resilient and healthy cities: A guide to environmental sustainability and well-being (pp. 131-147). Cham: Springer. doi: 10.1007/978-3-031-33863-2_10.
  25. Pretzsch, H., Moser-Reischl, A., Rahman, M. A., Pauleit, S., & Rötzer, T. (2023). Towards sustainable management of the stock and ecosystem services of urban trees. From theory to model and application. Trees, 37, 177-196. doi: 10.1007/s00468-021-02100-3.
  26. Probability and statistics topics index. (n.d.). Retrieved from https://www.statisticshowto.com/probability-and-statistics/.
  27. Reynolds, H.L., Mincey, S.K., Montoya, R.D., Hamlin, S., Sullivan, A., Thapa, B., Wilson, J., Rosing, H., Jarzen, J., & Grove, J.M. (2022). Green infrastructure for urban resilience: A trait‐based framework. Frontiers in Ecology and the Environment, 20(4), 231-239. doi: 10.1002/fee.2446.
  28. Romanchuck, L.D., Fedonyuk, T.P., & Fedonyuk, R.G. (2017). Model of influence of landscape vegetation on mass transfer processes. Biosystems Diversity, 25(3), 203-209. doi: 10.15421/011731.
  29. Semeraro, T., Scarano, A., Buccolieri, R., Santino, A., & Aarrevaara, E. (2021). Planning of urban green spaces: An ecological perspective on human benefits. Land, 10(2), article number 105. doi: 10.3390/land10020105.
  30. Sevianu, E., Maloş, C.V., Arghiuş, V., Brişan, N., Bǎdǎrǎu, A.S., Moga, M.C., Muntean, L., Rǎulea, A., & Hartel, T. (2021). Mainstreaming ecosystem services and biodiversity in Peri-urban Forest Park creation: Experience from Eastern Europe. Frontiers in Environmental Science, 9, article number 618217. doi: 10.3389/fenvs.2021.618217.
  31. Tapsuwan, S., Marcos‐Martinez, R., Schandl, H., & Yu, Z. (2021). Valuing ecosystem services of urban forests and open spaces: Application of the SEEA framework in Australia. Australian Journal of Agricultural and Resource Economics, 65(1), 37-65. doi: 10.1111/1467-8489.12416.
  32. Ungaro, F., Maienza, A., Ugolini, F., Lanini, G., Baronti, S., & Calzolari, C. (2022). Assessment of joint soil ecosystem services supply in urban green spaces: A case study in Northern Italy. Urban Forestry & Urban Greening, 67, article number 127455. doi: 10.1016/j.ufug.2021.127455.
  33. Vargas-Hernández, J.G., Pallagst, K., & Zdunek-Wielgołaska, J. (2023). Urban green spaces as a component of an ecosystem. In: S. Dhiman (Ed.), Sustainable Development and Environmental Stewardship: Global Initiatives Towards Engaged Sustainability (pp. 165-198). Cham: Springer. doi: 10.1007/978-3-031-28885-2_8.
  34. Vidal, D.G., Dias, R.C., Teixeira, C.P., Fernandes, C.O., Filho, W.L., Barros, N., & Maia, R.L. (2022). Clustering public urban green spaces through ecosystem services potential: A typology proposal for place-based interventions. Environmental Science & Policy, 132, 262-272. doi: 10.1016/j.envsci.2022.03.002.
  35. Wessels, N., Sitas, N., Esler, K.J., & O’Farrell, P. (2021). Understanding community perceptions of a natural open space system for urban conservation and stewardship in a metropolitan city in Africa. Environmental Conservation, 48(4), 244-254. doi: 10.1017/S0376892921000345.
  36. Wood, S.L.R., & Dupras, J. (2021). Increasing functional diversity of the urban canopy for climate resilience: Potential tradeoffs with ecosystem services? Urban Forestry & Urban Greening, 58, article number 126972. doi: 10.1016/j.ufug.2020.126972.
  37. Yerzhanova, A.E., Kerimkhulle, S.Y., Abdikerimova, G.B., Makhanov, M., Beglerova, S.T., & Taszhurekova, Z.K. (2021). Atmospheric correction of landsat-8 / Oli data using the flaash algorithm: Obtaining information about agricultural cropsJournal of Theoretical and Applied Information Technology, 99(13), 3110-3119.
  38. Zanzi, A., Andreotti, F., Vaglia, V., Alali, S., Orlando, F., & Bocchi, S. (2021). Forecasting agroforestry ecosystem services provision in urban regeneration projects: Experiences and perspectives from Milan. Sustainability, 13(5), article number 2434. doi: 10.3390/su13052434.
  39. Zhang, F., & Qian, H. (2024). A comprehensive review of the environmental benefits of urban green spaces. Environmental Research, 252, article number 118837. doi: 10.1016/j.envres.2024.118837.