Full-text resources of CEJSH and other databases are now available in the new Library of Science.
Visit https://bibliotekanauki.pl

PL EN


2023 | 93 | 3 | 55-68

Article title

Recreation Areas Optimisation and Nature Exploitation in Urban Ecosystems

Content

Title variants

Languages of publication

Abstracts

EN
It has been substantiated that the increase in the concentration of heavy metals in the environment has especially aggravated in the conditions of military operations on the territory of Ukraine. The use of woody plants for the purposes of phytoremediation is one of the most effective options for optimising the state of the environment in urban ecosystems, regardless of the nature and source of contamination by metallic elements, which is of significant relevance in the conditions of post-war environmental restoration of Ukraine. The purpose of the study is to explore the peculiarities of some heavy metals accumulation by the assimilation apparatuses of the black locust (Robinia pseudoacacia L.) plants growing in the recreational areas of the city of Dnipro in order to further optimise tree plantings with the aim of improving the environment. The content of heavy metal elements (Cu, Zn, Pb, and Cd) in the biomass of the Robinia pseudoacacia L. leaves and in the soils of Dnipro recreation areas has been determined. The intensity of the accumulation of heavy metals in the phytomass of the Robinia pseudoacacia L. represents the following sequence Zn > Cu > Pb > Cd, which demonstrates a more intense absorption and accumulation in the phytomass of the leafy fraction of Zn and Cu in the phytomass of the deciduous fraction, and less significant of Pb and Cd. With the help of geo-information systems, cartographic material has been developed. It demonstrates the concentration gradient of Pb, Cu, Cd, and Zn in the assimilation organs of the black locust plants in the city of Dnipro recreational areas. Based on the cartographic analysis, it has been proved that the general condition of the soils in the recreation areas of Dnipro is characterised by significant disproportions in the level of pollution. The maps show the existing potential of the accumulative capacity of Robinia pseudoacacia L. to deposit Pb, Cu, Cd, and Zn, which allows for additional city functional zoning by considering phytoremediation functions of the existing and planned green spaces.

Contributors

  • Dnipro University of Technology, Tourism and Enterprise Economics Department, Dmytro Yavornytskyi Av 19, Dnipro 49005, Ukraine
  • Dnipro University of Technology, Tourism and Enterprise Economics Department, Dmytro Yavornytskyi Av 19, Dnipro 49005, Ukraine
  • Dnipro University of Technology, Tourism and Enterprise Economics Department, Dmytro Yavornytskyi Av 19, Dnipro 49005, Ukraine
  • Dnipro University of Technology, Tourism and Enterprise Economics Department, Dmytro Yavornytskyi Av 19, Dnipro 49005, Ukraine

References

  • Ali, H., Khan, E., & Sajad, M. A. (2013). Phytoremediation of heavy metals: Concepts and applications. Chemosphere, 91(7), 869–881. https://doi.org/10.1016/j.chemosphere.2013.01.075
  • Alriksson, A., & Eriksson, H. M. (2001). Water, Air and Soil Pollution: Focus, 1(3/4), 461–475. https://doi.org/10.1023/a:1017586406593
  • Aman, M. S., Jafari, M., Reihan, M. K., Motesharezadeh, B., & Zare, S. (2018). Assessing the effect of industrial wastewater on soil properties and physiological and nutritional responses of robinia pseudoacacia, Cercis siliquastrum and Caesalpinia gilliesii seedlings. Journal of Environmental Management, 217, 718–726. https://doi.org/10.1016/j.jenvman.2018.03.087
  • Andersson, A., & Siman, G. (1991). Levels of CD and some other trace elements in soils and crops as influenced by lime and fertilizer level. Acta Agriculturae Scandinavica, 41(1), 3–11. https://doi.org/10.1080/00015129109438579
  • Arkhypova, L., Vinnychenko, I., Kinash, I., Horoshkova, L., & Khlobystov, I. (2022). Theoretical substantiation of modeling of Recreational Systems. Ecological Engineering & Environmental Technology, 23(5), 99–108. https://doi.org/10.12912/27197050/151758
  • Babov, K. (2019). Health tourism is one of the modern directions of increasing the effectiveness of sanatorium and Resort Activities. Medical Rehabilitation, Balneology, Physiotherapy, 92(2), 5–9. https://doi.org/10.32618/j19mrbph25
  • Bulisheva, D., & Andreieva, N. (2018). Ekolohizatsiya ekonomichnykh vidnosyn u systemi rekreatsiynoho zemlekorystuvannya misʹkykh ahlomeratsiy: teoriya ta praktyka : monohrafiya [Greening of economic relations in the system of recreational land use of urban agglomerations: theory and practice]. IPREED NANU, Ukraine. Available at: http://lib.osau.edu.ua/jspui/bitstream/123456789/2033/1/12.pdf (accessed: 10.08.2022).
  • Carl, C., Biber, P., Veste, M., Landgraf, D., & Pretzsch, H. (2018). Key drivers of competition and growth partitioning among robinia pseudoacacia L. trees. Forest Ecology and Management, 430, 86–93. https://doi.org/10.1016/j.foreco.2018.08.002
  • Clark, P., Niemi, M., & Niemelä, J. (2009). Sport, Recreation and Green Space in the European City. Finnish Literature Society. https://doi.org/10.21435/sfh.16
  • Cook, L. M., & Larsen, T. A. (2021). Towards a performance-based approach for multifunctional green roofs: An interdisciplinary review. Building and Environment, 188, 107489. https://doi.org/10.1016/j.buildenv.2020.107489
  • Cortinovis, C., Zulian, G., & Geneletti, D. (2018). Assessing nature-based recreation to support Urban Green Infrastructure Planning in Trento (Italy). Land, 7(4), 112. https://doi.org/10.3390/land7040112
  • Das, P., Samantaray, S., & Rout, G. R. (1997). Studies on cadmium toxicity in plants: A review. Environmental Pollution, 98(1), 29–36. https://doi.org/10.1016/s0269-7491(97)00110-3
  • Davis, V., Burger, J.A., Rathfon, R., Zipper, C.E., & Miller C.R. (2017). Chapter 7: Selecting tree species for reforestation of Appalachian mined lands. In: Adams, Mary Beth (Ed.). The Forestry Reclamation Approach: Guide to successful reforestation of mined lands (pp. 7-1-7-10). U.S. Department of Agriculture, Forest Service, Northern Research Station.
  • Department of Ecology and Natural Resources under Dnipropetrovsk Regional State Administration (2020). Regional report on the state of the natural environment in the Dnipropetrovsk region for 2019. Available at: https://adm.dp.gov.ua/storage/app/uploads/public/605/06f/47b/60506f47bd3cb255698190.pdf (accessed: 17.08.2022).
  • Dikanov, Y. (2019). Teoretychni aspekty infrastruktury pryrodokorystuvannya yak pidgruntya protsesu resursozberezhennya [Theoretical aspects of the infrastructure of nature use as a basis for the process of resource conservation]. Zbirnik naukovih prats Cherkaskogo derzhavnogo tehnologichnogo universitetu, 54, 25-34. http://nbuv.gov.ua/UJRN/Znpchdtu_2019_54_6.
  • Drozdova, N. Y., & Makarenko, T. V. (2015). Doslidzhennya osoblyvostey nakopychennya vazhkykh metaliv u systemi «grunt-roslyna» v umovakh promyslovykh zon [Study of the features of the accumulation of heavy metals in the “soil-plant” system in the conditions of industrial zones]. Ekolohichnyy visnyk, 4(34), 96–102.
  • DSTU ISO (2005). Soil quality. Sampling of samples. Part 4. Guidelines for the procedure for the study of natural, almost natural and cultivated areas (10381-4:2005). Available at: http://online.budstandart.com/ua/catalog/doc-page?id_doc=52991 (accessed: 15.08.2022).
  • Fernández, S., Poschenrieder, C., Marcenò, C., Gallego, J. R., Jiménez-Gámez, D., Bueno, A., & Afif, E. (2017). Phytoremediation capability of native plant species living on Pb-Zn and hg-as mining wastes in the cantabrian range, north of Spain. Journal of Geochemical Exploration, 174, 10–20. https://doi.org/10.1016/j.gexplo.2016.05.015
  • Heilmeier, H. (2021). Phytomining applied for postmining sites. Phytotechnology with Biomass Production, 61–75. https://doi.org/10.1201/9781003082613-4
  • Hongxiang, P., Banghua, M., Yongjian, C., Hongbo, Q., & Shumei, S. (2016). Dynamic characteristics of soil properties in a Robinia pseudoacacia vegetation and coastal eco-restoration. Ecological Engineering, 92, 132–137. https://doi.org/10.1016/j.ecoleng.2016.03.037
  • Horoshkova, L., Khlobystov, Іe., Filipishyna, L., Shvydenko, M., & Bessonova, S. (2020, November 10-13). Economic and mathematical modeling of ecological expenditure for sustainable development of united territorial communities [Paper presentation]. XIV International Scientific Conference “Monitoring of Geological Processes and Ecological Condition of the Environment”, European Association of Geoscientists & Engineers Source, Kyiv, Ukraine. https://doi.org/10.3997/2214-4609.202056091.
  • Hotsii, N. (2020). Bioecological features of vines of the genus Parthenocissus Planch. and their use for phytomelioration of Lviv’s environment [PhD Thesis, National Forestry University of Ukraine, Lviv]; available at: https://sci.ldubgd.edu.ua/jspui/handle/123456789/10529 (accessed: 17.08.2022).
  • Houda, Z., Bejaoui, Z., Albouchi, A., Gupta, D. K., & Corpas, F. J. (2016). Comparative study of plant growth of two poplar tree species irrigated with treated wastewater, with particular reference to accumulation of heavy metals (Cd, Pb, As, and Ni). Environmental Monitoring and Assessment, 188(2). https://doi.org/10.1007/s10661-016-5102-0
  • Hryshko, V.M., Syshchykov, D.V., Piskova, O.M., Danilʹchuk, O.V., & Mashtaler, O.V. (2012). Vazhki metaly: nad-khodzhennia v grunty, translokatsiia u roslynakh ta ekolog-ichna bezpeka [Heavy metals: entry into soils: translocation in plants and environmental safety]. Donetsʹk: Donbas.
  • Hunʹko, S. (2021). Patterns of cadmium distribution in edaphotographs of urbanized areas of Kamianske [PhD Thesis, Oles Honchar Dnipro National University, Dnipro]. Available at: https://www.dnu.dp.ua/docs/ndc/dissertations/D08.051.04/dissertation_606016a359ebb.pdf (accessed: 17.08.2022).
  • Kalchenko, S. V., Hutorov, A. O., Bezuhla, L. S., Leushina, O. A., Popova, T. V., & Dorokhov, O. V. (2021). Managing the socio-economic development of small forms of green tourism. Series II: Forestry Wood Industry Agricultural Food Engineering, 14(63)(1), 141–152. https://doi.org/10.31926/but.fwiafe.2021.14.63.1.13
  • Koshkalda, I., Anopriienko, T., Klochko, T., Bieloborodova, M., & Bessonova, A. (2022). The comprehensive plan of the territory spatial development as a prospective plan of United Territorial Communities Development. Review of Economics and Finance, 20, 617–622. https://doi.org/10.55365/1923.x2022.20.71
  • Lazzaro, L., Mazza, G., d’Errico, G., Fabiani, A., Giuliani, C., Inghilesi, A. F., Lagomarsino, A., Landi, S., Lastrucci, L., Pastorelli, R., Roversi, P. F., Torrini, G., Tricarico, E., & Foggi, B. (2018). How ecosys tems change following invasion by Robinia Pseudoacacia: Insights from soil chemical properties and soil microbial, nematode, microarthropod and plant communities. Science of The Total Environment, 622–623, 1509–1518. https://doi.org/10.1016/j.scitotenv.2017.10.017
  • Li, G., Xu, G., Guo, K., & Du, S. (2014). Mapping the global potential geographical distribution of black locust (robinia pseudoacacia L.) using herbarium data and a maximum entropy model. Forests, 5(11), 2773–2792. https://doi.org/10.3390/f5112773
  • Main Department of Statistics in Dnipropetrovsk Region. (2020). Statistical Yearbook of Dnipropetrovsk region. Infographics. Available at: http://www.dneprstat.gov.ua/infografika/2019/shor-obl-2019.pdf (accessed: 17.08.2022).
  • Menshov, O., Kruglov, O., Vyzhva, S., Horoshkova, L., Pereira, P., Pastushenko, T., & Dindaroglu, T. (2021). Landscape position effects on magnetic properties of soils in the agricultural land pechenigy, Ukraine. Earth Systems and Environment, 5(3), 739–750. https://doi.org/10.1007/s41748-021-00240-7
  • Ministry of Development of Communities and Territories of Ukraine. (2021). State of the field of green economy for 2021. Available at: https://www.minregion.gov.ua/napryamki-diyalnosti/zhkh/terretory/stan-sfery-zelenogo-gospodarstva-za-2021-rik/ (accessed: 17.09.2022).
  • Ministry of Health of Ukraine. (2020). Hygiene regulations on the permissible content of chemical substances in the soil. Available at: https://zakon.rada.gov.ua/laws/show/z0722-20#Text (accessed: 16.08.2022).
  • Netusil, N. R., Lavelle, L., Dissanayake, S., & Ando, A. W. (2022). Valuing the public benefits of green roofs. Landscape and Urban Planning, 224, 104426. https://doi.org/10.1016/j.landurbplan.2022.104426
  • Novikova, L. (2020). Self-assessment of the state of health by the population of Ukraine. Available at: https://www.kiis.com.ua/?lang=ukr&cat=reports&id=943&t=6&page=3 (accessed: 17.08.2022).
  • ODK. (2009). Approximately permissible concentrations of chemical substances in soil (2.1.7.2511–09). Available at: https://files.stroyinf.ru/Data2/1/4293828/4293828439.pdf (accessed: 16.09.2022).
  • Petit-Berghem, Y., Rémy, E., & Canavese, M. (2021). Renaturation and ecosystem services of contaminated urban wastelands in France. Urban Wastelands, 251–272. https://doi.org/10.1007/978-3-030-74882-1_12
  • Pizzol, M., Smart, J. C. R., & Thomsen, M. (2014). External costs of cadmium emissions to soil: A drawback of phosphorus fertilizers. Journal of Cleaner Production, 84, 475–483. https://doi.org/10.1016/j.jclepro.2013.12.080
  • Pleshkanovsʹka, A. (2005). Funktsionalʹno-planuvalʹna optymizatsiya vykorystannya misʹkykh terytoriy [Functional and planning optimization of the use of urban areas]. Logos.
  • Shushulkov, S. (2020). Ecological and economic principles of recreational land use in urbanized areas [PhD Thesis, Lviv National Agrarian University of the Ministry of Education and Science of Ukraine, Lviv]. Available at: http://www.lnau.edu.ua/lnau/attachments/6815_aref.pdf (accessed: 17.09.2022).
  • Tymchuk, I., Malovanyy, M., Shkvirko, O., Chornomaz, N., Popovych, O., Grechanik, R., & Symak, D. (2021). Review of the global experience in reclamation of Disturbed Lands. Ecological Engineering& Environmental Technology, 22(1), 24–30. https://doi.org/10.12912/27197050/132097
  • UNDP. (2019). Human Development Report 2019: Overview. Beyond income, beyond averages, beyond today: Inequalities in human development in the 21st century. Available at: https://hdr.undp.org/system/files/documents//hdr2019pdf.pdf (accessed: 18.09.2022).
  • UN OCHA. (2022). UN: Ukraine - one of most mine-contaminated countries in world. Available at: https://report.az/en/other-countries/un-ukraine-one-of-most-mine-contaminated-countries-in-world/(accessed: 17.09.2022).
  • Vabuolytė, V., Burinskienė, M., Sousa, S., Petrakovska, O., Trehub, M., & Tiboni, M. (2021). Increase in the value added of land due to the establishment of Industrial Parks. Sustainability, 13(15), 8541. https://doi.org/10.3390/su13158541
  • State Water and Gas Administration of Ukraine. (2001). Instructions for taking water and soil samples for measurement in the laboratories of the State Water and Gas Administration of Ukraine (VND 33-1.1-17-2001). Available at: https://ep3.nuwm.edu.ua/2652/1/nd067%20zah.pdf (accessed: 20.09.2022).
  • Woch, M. W. (2018). Factors of variation in beech forest understory communities on waste heaps left by historical Zn-PB Ore Mining. Ecotoxicology and Environmental Safety, 164, 681–689. https://doi.org/10.1016/j.ecoenv.2018.08.067
  • World Health Organization, and Regional Office for Europe. ( 2018). European health report 2018: more than numbers – evidence for all. Available at: https://apps.who.int/iris/handle/10665/279904 (accessed: 19.08.2022).
  • Wu, W., & Ding, K. (2022). Optimization strategy for parks and green spaces in Shenyang City: Improving the supply quality and accessibility. International Journal of Environmental Research and Public Health, 19(8), 4443. https://doi.org/10.3390/ijerph19084443
  • Zverkovskyy, V., Sytnyk, S., Lovynska, V., Kharytonov, M., Lakyda, I., Mykolenko, S., Pardini, G., Margui, E. & Gispert, M. (2018). Remediation Potential of Forest Forming Tree Species Within Northern Steppe Reclamation Stands. Ekológia (Bratislava), 37(1) 69–81. https://doi.org/10.2478/eko-2018-0007
  • Zverkovskyi, V. M., Sytnyk, S. A., Lovynska, V. M., Kharytonov, M. M., & Mykolenko, S. Yu. (2017). Remediatsiynyy potentsial lisoutvoryuvalʹnykh porid u rekulʹtyvatsiynykh nasadzhennyakh [Remediation potential of forest-forming species in the reclamation planting]. Ukrainian Journal of Ecology, 7(3), 64–72. https://doi.org/10.15421/2017_50

Document Type

Publication order reference

Identifiers

Biblioteka Nauki
24496514

YADDA identifier

bwmeta1.element.ojs-doi-10_7366_1509499539304
JavaScript is turned off in your web browser. Turn it on to take full advantage of this site, then refresh the page.