Environmental management: assessing the reliability of ecosystems to ensure their environmental sustainability
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- Category: Content №2 2025
- Last Updated on 26 April 2025
- Published on 30 November -0001
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Authors:
C.Мadzhd*, orcid.org/0000-0003-2857-894X, National University of Food Technologies, Kyiv, Ukraine, e-mail: This email address is being protected from spambots. You need JavaScript enabled to view it.
O.Nychyk, orcid.org/0000-0002-4679-8607, National University of Food Technologies, Kyiv, Ukraine, е-mail: This email address is being protected from spambots. You need JavaScript enabled to view it.
O.Togachynska, orcid.org/0000-0002-6672-6539, National University of Food Technologies, Kyiv, Ukraine, е-mail:This email address is being protected from spambots. You need JavaScript enabled to view it.
O.Lunova, orcid.org/0000-0002-2869-736X, State University “Zhytomyr Polytechnic”, Zhytomyr, Ukraine, е-mail: This email address is being protected from spambots. You need JavaScript enabled to view it.
O.Maksymenko, orcid.org/0000-0003-3730-2400, National Technical University “Kharkiv Polytechnic Institute”, Kharkiv, Ukraine, е-mail: This email address is being protected from spambots. You need JavaScript enabled to view it.
* Corresponding author e-mail: This email address is being protected from spambots. You need JavaScript enabled to view it.
Naukovyi Visnyk Natsionalnoho Hirnychoho Universytetu. 2025, (2): 164 - 171
https://doi.org/10.33271/nvngu/2025-2/164
Abstract:
Purpose. Development of a methodology for ensuring the environmental sustainability of anthropogenically loaded hydroecosystems based on the reliability theory.
Methodology. An integrated approach is used with the application of standardised methods of field and laboratory research, as well as methods of statistical processing of experimental research results and methods of mathematical modelling. Based on the theory of reliability, a methodology for studying the state of reliability of ecosystems has been developed to ensure an adequate level of their environmental safety through the restoration of natural mechanisms of environmental sustainability.
Findings. The authors consider the possibility of improving the environmental management system through the use of a system for assessing the reliability of ecological systems to ensure their environmental sustainability. The paper presents a proven algorithm for ensuring the environmental sustainability of ecosystems subjected to intensive anthropogenic pollution through the assessment of their environmental reliability, a practical tool for ensuring an adequate level of environmental safety of ecosystems. The issues of distribution and redistribution of anthropogenic pollutants are studied by the example of hydroecosystems of the Dnipro basin and the reaction of living organisms to the impact of pollutants is determined by mathematical modelling. The statistical and mathematical models describe the mechanism of loss of stability of hydroecosystems depending on the level of disturbance of intra-watershed processes caused by structural and functional changes. The results of mathematical modelling of ecosystems reliability are presented, which are used to assess the risks of loss of ecological stability of anthropogenically loaded ecosystems. An algorithm for managing ecosystem reliability to restore their ecological sustainability through the use of phytotechnologies has been developed.
Originality. On the basis of mathematical modelling, an applied tool for the environmental management system has been developed that will allow controlling the level of pollution of surface water bodies through the use of an economically sound methodology for assessing the reliability of ecosystems with a high level of anthropogenic load. For the first time, it is proposed to improve the level of ecological safety of ecosystems by ensuring their ecological sustainability, by restoring biotic potential and ecological stability.
Practical value. The obtained results make it possible to recommend the methodology for assessing the reliability of ecosystems for use to assess the state of ecosystems with a high level of environmental hazard. The developed methodology allows improving the environmental management system, since this assessment is more economically feasible compared to expensive methods for assessing the level of anthropogenic transformation of natural ecosystems.
Keywords: environmental management system, environmental sustainability, biotic potential, environmental reliability
References.
1. Isaenko, V., & Cherniak, L. (2019) Development of a procedure for determining the basic parameter of aquatic ecosystems functioning – environmental capacity. Eastern-European Journal of Enterprise Technologies, 1/10(97), 21-28. https://doi.org/10.15587/1729-4061.2019.157089
2. Mikhyeyev, O., & Dmytrukha, T. (2015). Adaptation of hydrophite system for purification of wastewaters of civil aviation enterprises. Journal of water chemistry and Technology, (6), 29-34.
3. Lapan, О., Mikhyeyev, O., Madzhd, S., Dmytrukha, T., Cherniak, L., & Petrusenko, V. (2019). Water Purification from Ions of Cadmium (II) Using a Bio-Plateau. Journal of Ecological Engineering, 20(11), 29-34. https://doi.org/10.12911/22998993/113412
4. Melnyk, M. V., & Kogdenko, V. G. (2020). The main elements of economic sustainability in modern conditions. Accounting. Analysis. Audit, (4), 98-105.
5. Yarema, L. V., & Zamora, O. I. (2021). Management of the resource potential of the region: Bulletin of KhNAU named after V. V. Dokuchaev, (1), 364-376.
6. Peiyue, Li, Karunanidhi, D., Subramani, T., & Srinivasamoorthy, K. (2021). Sources and Consequences of Groundwater Contamination. Archives of Environmental Contamination and Toxicology, 80, 1-10. https://doi.org/10.1007/s00244-020-00805-z
7. Boyko, E. S. (2018). Features and prerequisites for the formation of sustainable agricultural production. Bulletin of KhNAU named after V. V. Dokuchaev, (2), 92-102.
8. Ashok, K., Rupesh, К., & Deepak, B. (2024). Emerging drifts big data analytics and environment sustainability (EBAES). Environmental Science and pollution. https://doi.org/10.1007/s11356-024-35876-1
9. Musikevych, Y. G. (2015). Systems theory in ecology. Sumy State University, 330.
10. Azarov, S. I., Sydorenko, S. I., & Zadunay, O. S. (2017). Determination of ecosystems reliability to the anthropogenic pressure factor. Ecological safety and nature management, 24, 50-57.
11. Madzhd, S. M. (2019). On the experience of effective use of biological methods of wastewater treatment. VI International scientific conference ‘Actual scientific research in the modern world’, abstracts, Pereyaslav-Khmelnytskyi, (pp. 154-157). Retrieved from https://er.nau.edu.ua/collections/5db0b230-21d6-43bf-96a1-77271ef6fe32
12. Madzhd, S. M., & Kulinich, Y. I. (2017). Mechanism of biotic self-regulation of technogenically altered water systems. V International scientific-practical conference ‘Environment surrounding a person: natural, technogenic, social’, abstracts of the conference: Berdiansk University of Engineering and Technology, (pp. 218-221). Retrieved from https://er.nau.edu.ua/bitstream/NAU/38569/2/
13. Matveeva, I. V. (2011). Investigation and assessment of the reliability of radionuclide transport systems in the local agroecosystem. Bulletin of the National Aviation University, 2(47), 148-154.
14. Azarov, S., & Zadunay, O. (2020). Analysis of methodological approaches to assessing the sustainability of ecosystems. Ecological safety and nature management, 34(2), 99-110. https://doi.org/10.32347/2411-4049.2020.2.99-110
15. Dong, J., Zhou, Q., Gao, Yu., Gu, Q., Li, G., & Song, L. (2018). Long-term effects of temperature and nutrient concentrations on the phytoplankton biomass in three lakes with differing trophic statuses on the Yungui Plateau China. International Journal of Limnology, 54, 9. https://doi.org/10.1051/limn/2017031
16. Morelli, J. (2022). Environmental Sustainability: A Definition for Environmental Professionals. Journal of Environmental Sustainability, 1, 68-74.
17. Azarov, S., & Zadunay, O. (2019). Analysis of ecosystem sustainability. Ecological safety and environmental management, 3, 46-56.
18. Azarov, S., & Zadunay, O. (2018). Modelling the sustainability of ecosystems. Ecological Sciences, 4(23), 5-9. https://doi.org/10.32347/2411-4049.2019.2.18-29
19. Nezbrytskaya, I. N., & Kureyshevich, A. V. (2015). Changes in the Content of Photosynthetic Pigments in Representatives of Chlorophyta and Cyanoprokaryota at a High Temperature. Hydrobiological Journal, 51(4), 46-56.
20. Toyama, T., Hanaoka, T., Yamada, K., Suzuki, K., Tanaka, Ya., Morikawa, M., & Mori, K. (2019). Enhanced production of biomass and lipids by Euglena gracilis via co-culturing with a microalgae growth-promoting bacterium, Emticicia sp. EG3. Biotechnol Biofuels, (12), 205. https://doi.org/10.1186/s13068-019-1544-2
21. Mikheev, A. N., & Lapan, О. (2018). Development of a new method of garment filtering purification of water objects of chrome (VI). Journal of water chemistry and technology, 3, 157-159. https://doi.org/10.3103/S1063455X18030074
22. Osadcha, N. M., Osadchyi, V. I., Osipov, V. V., Biletska, S. V., Kovalchuk, L. A., & Artemenko, V. A. (2020). Methodology of selecting zones vulnerable to surface and groundwater pollution by nitrate compounds. Ukrainian Geographical Journal, 4(112), 38-48. https://doi.org/10.15407/ugz2020.04.038
23. Lapan, О., & Petrusenko, V. (2019). Water Purification from Ions of Cadmium (II) Using a Bio-Plateau. Journal of Ecological Engineering, 20(11), 29-34. https://doi.org/10.12911/22998993/113412
24. Madkour, A. G., Rasheedy, S. H., Dar, M. A., Farahat, A. Z., & Mohammed, T. A. (2017). The differential efficiency of Chlorella vulgaris and Oscillatoria sp. to treat the municipal wastewater. J. Biol. Agric. Healthcare, 7(22), 83-94.
25. Mikheev, A., Lapan, О., & Madzhd, S. (2017). Experimental foundations of a new method for rhizofiltration treatment of aqueous ecosystems from 137 Cs. Journal of water chemistry and technology, 4, 245-249. https://doi.org/10.3103/S1063455X17040117
26. Madzhd, S. M. (2024). Environmental sustainability - an indicator of sustainable development of society. Online conference: ‘Sustainable development of the EU – best practices for Ukraine’. Lviv, 10 February 2024, (pp. 121-124). Retrieved from https://dspace.nuft.edu.ua/items/9d27d523-4c78-423d-9fc9-291f1e55b1de
27. Mikheev, O. M., Lapan, O. V., Madzhd, S. M., & Cherniak, L. M. (2022). Development of a hydrophytic bioplateau-type structure for phytoremediation purposes. Reports of the National Academy of Sciences of Ukraine, (3), 92-98. https://doi.org/10.15407/dopovidi2022.03.092
28. Serdyuk, S. M., Dovganenko, D. O., & Lunova, O. V. (2020). Modern Deformations of the Shoreline of the Dnipro Reservoir in the Context of Possible Geoecological Consequences. Kyiv: Ecological Sciences. https://doi.org/10.32846/2306-9716/2020.eco.2-29.2.12
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