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Home » Archive of journals » Volume 15, No. 4, 2025 » Prospects for creating a nature-like technological platform to monitor the ecological state of freshwater in the Russian Arctic

PROSPECTS FOR CREATING A NATURE-LIKE TECHNOLOGICAL PLATFORM TO MONITOR THE ECOLOGICAL STATE OF FRESHWATER IN THE RUSSIAN ARCTIC

JOURNAL: Volume 15, No. 4, 2025, p. 558-566

HEADING: Ecology

AUTHORS: Rumyantsev, V.A.

ORGANIZATIONS: Saint-Petersburg Research Center of the Russian Academy of Sciences

DOI: 10.25283/2223-4594-2025-4-558-566

UDC: 502.51(28):502.175(985)

The article was received on: 10.07.2025

Keywords: aerotechnogenic contamination, reference water bodies, water sampling using UAVs, biomimetic system

Bibliographic description: Rumyantsev, V.A. Prospects for creating a nature-like technological platform to monitor the ecological state of freshwater in the Russian Arctic. Arktika: ekologiya i ekonomika. [Arctic: Ecology and Economy], 2025, vol. 15, no. 4, pp. 558-566. DOI: 10.25283/2223-4594-2025-4-558-566. (In Russian).


Abstract:

A concept has been developed to create a technological platform for end-to-end monitoring of aerotechnogenic pollution of fresh waters in the Arctic zone of the Russian Federation. It is based on the results of many years of scientific research and the capabilities of modern technical means and technological solutions. Its creation is aimed at detecting water bodies with violated environmental safety conditions. Detection of a violation simultaneously means the presence of harm to the environment in the process of economic development, which contradicts the requirements of regulatory bodies.


Finance info: The paper was prepared in the framework of the research work on the topic “Development of a system of scientific monitoring of the transformation of the scientific and innovative space of St. Petersburg in the context of innovative development of the Russian economy taking into account the theoretical and methodological foundations of sustainable technological development of the region based on innovation and investment activities and the reproduction and formation of the scientific and educational potential of St. Petersburg” (FMRU-2024-0003).

References:

1. Kotova E. I., Korobov V. B., Pavlenko V. I. Extreme pollution in the Arctic zone: cases and analyses. Regional environmental issues, 2018, no. 1, pp. 64—72. (In Russian).

2. Nogovitsyn P. P., Vasiljeva A. M. Ensuring the ecologic security in the Russian Federation (Yakutsk, Moscow). Problems of modern economics, 2018, no. 4 (68), pp. 203—205. (In Russian).

3. Kashulin N. A., Denisov D. B., Valkova S. A., Vandysh O. I., Terentjev P. M. The modern tendencies of modification of fresh water ecosystems of the Euro-Arctic region, Trudy Kol’skogo Nauchnogo Tsentra of the Russian Academy of Sciences, 2012, vol. 1, no. 2, pp. 7—54. (In Russian).

4. Molchanov V. P., Akimov V. A., Sokolov Yu. I. Risks of emergency situations in the Arctic zone of the Russian Federation. Moscow, FGBU VNII GOChS (FC), 2011, 300 p. (In Russian).

5. Revich B. A. Health risks of the population in “hot spots” from chemical pollution of the Arctic microregion.  Problems of forecasting, 2020, no. 2 (179), pp. 148—155. (In Russian).

6. Amirova Z. K., Kulagin A. A. Persistent organic compounds in the atmospheric air of urbanized territories of Russia. Ufa, BSPU named after M. Akmulla, 2017, 224 p. (In Russian).

7. Nikanorov A. M., Bryzgalo V. A., Kosmenko L. S., Danilenko A. O. Rivers of the mainland part of the Russian Arctic. Rostov-on-Don, Southern Federal University, 2016, 276 p. (In Russian).

8. Rumyantsev V. A. Conceptual and methodological approaches to organizing the surface water monitoring system of the Arctic zone of the Russian Federation. Problems of the Arctic and Antarctic, 2024, vol. 70, no. 2, pp. 210—221. (In Russian).

9. Nikanorov A. M., Ivanov V. V., Bryzgalo V. A. Rivers of the Russian Arctic under modern conditions of anthropogenic impact. Rostov-on-Don, NOC, 2007, 280 p. (In Russian).

10. Berlyand M. E. Modern Problems of Atmospheric Diffusion and Atmospheric Pollution. Leningrad, 1975, 448 p. (In Russian).

11. Methods for Calculating the Dispersion of Emissions of Harmful (Polluting) Substances in the Atmospheric Air. Approved by the order of the Ministry of Natural Resources of Russia dated May 05, 2017 no. 273. (In Russian).

12. Turner D. B. Workbook of Atmospheric dispersion estimates. U.S. Department of Health, Education, and Welfare. [S. l.], 1970—1991, 84 p.

13. Koparan C., Koc A. B., Privette C. V., Sawyer C. B. In situ water quality monitoring using an unmanned aerial vehicle (UAV). System, 2018, 9 (4), 89 p.

14. Koparan C., Koc A. B., Privette C. V., Sawyer C. B., Sharp J. L. Autonomous in situ measurements of noncontaminant water quality indicators and sample collection with a UAV. Water, 2020, 12 (4), p. 1028.

15. Bonacci D., Brigante R. Unmanned Aerial Vehicles (UAVs) in Water Sampling: A Systematic Review. Water, 2022, 14 (19), p. 3071.

16. Vlasov Yu. G., Legin A. V., Rudnitskaya A. M. Electronic tongue — systems of chemical sensors for the analysis of aqueous media. Russian Chemical J., 2008, no. 2, pp. 101—112. (In Russian).

17. Zadorozhnaya O. A., Kirsanov D. O., Vlasov Y. G. [et al.] Determination of the integral toxicity of water in terms of biotesting with a multisensor system sensitive to individual toxicants. Russian J. of Applied Chemistry. — 2014. — Vol. 87, no. 4. — P. 412—418.

18. Kirsanov D., Legin E., Zagrebin A., Ignatieva N., Rybakin V., Legin A. Mimicking Daphnia magna bioassay performance by an electronic tongue for urban water quality control. Analytica Chimica Acta, 2014, 824, pp. 64—70.

19. Legin E., Zadorozhnaya O., Khaydukova M., Kirsanov D., Rybakin V., Zagrebin A., Ignatyeva N., Ashina J., Sarkar S., Mukherjee S., Bhattacharyya N., Bandyopadhyay R., Legin A. Rapid evaluation of integral quality and safety of surface and waste waters by a multisensor system (electronic tongue). Sensors (Switzerland), 2019, 19 (9), paper # 2019. DOI: 10.3390/s19092019.


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DOI 10.25283/2223-4594