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ENVIRONMENTAL PROTECTION
ArticleName Remote sensing of vegetation restoration in mining areas in the south of Russia’s Far East
DOI 10.17580/gzh.2024.06.17
ArticleAuthor Ozaryan Yu. A.
ArticleAuthorData

Institute of Mining, Far Eastern Branch, Russian Academy of Sciences, Khabarovsk, Russia

Yu. A. Ozaryan, Leading Researcher, Candidate of Engineering Sciences, ozaryanigd@gmail.com

Abstract

The study combines the results of field observations and remote sensing data, as well as the laboratory analysis to assess the processes of natural recovery of biota components and the environmental impact of mining in the south of the Far East of Russia. Thus, the purpose of this study is to analyze the natural restoration of vegetation in the mining areas in the southern Far East. Four different natural and technical systems were selected for the study. The features of the development of secondary plant communities in the test area are studied. Natural and technical systems formed during gold placer mining, as well as tailings storage facilities and adjacent areas, and overburden dumps generated during extraction of coal and building stone are considered. The results obtained by the author show that natural restoration of soil and vegetation cover takes place more intensively in the presence of a developed plant community in the close proximity to a man-made object; the surface of the tailings ponds is partially and unevenly covered with vegetation, unlike the dumps studied. The results show that reclamation of mining-disturbed should be carried out taking into account the potential of the components of the natural and technical environment for natural restoration.
The study was supported by the Government of the Khabarovsk Krai, Project No. 48С/2023.

keywords Biota components, natural restoration, manmade deposit, remote sensing of the earth, reclamation, disturbed lands, GIS
References

1. Bowker L. N., Chambers D. M. The Risk, Public Liability, & Economics of Tailings Storage Facility Failures. 2015. Available at: https://www.resolutionmineeis.us/documents/bowker-chambers-2015 (accessed: 15.04.2024).
2. Jordan G., Abdaal A. Decision support methods for the environmental assessment of contamination at mining sites. Environmental Monitoring and Assessment. 2013. Vol. 185. pp. 7809–7832.
3. Masocha M., Dube T., Mambwe M., Mushore T. D. Predicting pollutant concentrations in rivers exposed to alluvial gold mining in Mazowe Catchment, Zimbabwe. Physics and Chemistry of the Earth, Parts A/B/C. 2019. Vol. 112. pp. 210–215.
4. Zenkov I. V., Kiryushina E. V., Vokin V. N., Maglinets Yu. A. Review of global trends in meeting the ecological challenges of the mining industry. Part I: International research. Eurasian Mining. 2022. No. 1. pp. 90–94.
5. Evdokimov S. I., Gerasimenko T. E. Pilot tests of gravity-flotation technology for processing industrial waste from alluvial gold mining. Tsvetnye Metally. 2021. No. 8. pp. 7–15.
6. Chmykhalova S. V. Effectiveness evaluation of mining as a natural and tec hnical system with a decrease in the content of a useful component of the ore-raw material base. Eurasian Mining. 2021. No. 2. pp. 36–40.
7. Abdelaal A., Sultan M., Elhebiry M., Krishnamurthy R. V., Sturchio N. Integrated studies to identify site-specific parameters for environmentally benign mining operations: A case study from the Sukari Gold Mine, Egypt. Science of The Total Environment. 2021. Vol. 750. ID 141654.
8. Ozaryan Yu. A. Effect of abiotic factors on biota of ecosystems in quarrying of building materials: A case-study of Korfovsky Stone Quarry, LLC : Dissertation of Candidate of Engineering Sciences. Khabarovsk, 2012. 191 p.
9. Prach K., Pyšek P. Using spontaneous succession for restoration of human-disturbed habitats: Experience from Central Europe. Ecological Engineering. 2001. Vol. 17, Iss. 1. pp. 55–62.
10. Galchenko Yu., Ozaryan Yu. Method of quantitative assessment of the regularities of natural restoration of biota in z ones of technogenic disturbance by extractive enterprises. Problems of Complex Development of Georesources : Proceedings of VII International Scientific Conference. 2018. E3S Web of Conferences. 2018. Vol. 56. ID 04006.
11. Zedler J. B. Progress in wetland restoration ecology. Trends in Ecology & Evolution. 2000. Vol. 15, Iss. 10. pp. 402–407.
12. Ferreira A. C., Ganade G., de Attayde J. L. Restoration versus natural regeneration in a neotropical mangrove: Effects on plant biomass and crab communities. Ocean & Coastal Management. 2015. Vol. 110. pp. 38–45.
13. An Y., Gao Y., Tong S., Lu X., Wang X. et al. Variations in vegetative characteristics of Deyeuxia angustifolia wetlands following natural restoration in the Sanjiang Plain, China. Ecological Engineering. 2018. Vol. 112. pp. 34–40.
14. Zhang Y.-W., Shangguan Z.-P. Interaction of soil water storage and stoichiometrical characteristics in the long-term natural vegetation restoration on the Loess Plateau. Ecological Engineering. 2018. Vol. 116. pp. 7–13.
15. Ozaryan Yu. A. Assessment of natural biota rehabilitation in the influence zone of mining in the Khabarovsk Territory by satellite monitoring data. Gornyi Zhurnal. 2018. No. 10. pp. 84–88.
16. SUEK assets. Khabarovsk Krai. 2024. Available at: https://suek.ru/our-business/operations/?region=khabarovskiy_kray (accessed: 15.06.2023).
17. Mi J., Liu R., Zhang S., Hou H., Yang Y. et al. Vegetation patterns on a landslide after five years of natural restoration in the Loess Plateau mining area in China. Ecological Engineering. 2019. Vol. 136. pp. 46–54.
18. Le Hung Trinh, Zenkov I. V., Thi Thu Nga Nguyen, Yuronen Yu. P. Vegetation mantle change in the open pit mining area of S in Quyen Copper Mine in Vietnam by satellite imagery data. Gornyi Zhurnal. 2022. No. 2. pp. 88–92.

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