Ecological and hygienic assessment of soils on the content of heavy metals and arsenic in an industrial city with glass production
- Authors: Trifonova T.A.1,2, Martsev A.A.2, Selivanov O.G.2, Kurbatov Y.N.2
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Affiliations:
- Lomonosov Moscow State University
- Vladimir State University named after A.G. and N.G. Stoletov
- Issue: Vol 102, No 6 (2023)
- Pages: 549-555
- Section: ENVIRONMENTAL HYGIENE
- Published: 31.07.2023
- URL: https://rjsocmed.com/0016-9900/article/view/638537
- DOI: https://doi.org/10.47470/0016-9900-2023-102-6-549-555
- EDN: https://elibrary.ru/lkmlsk
- ID: 638537
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Full Text
Abstract
Introduction. The paper presents the results of a study on assessing the level of soil contamination with heavy metals and arsenic in a city with a long-term glass production.
Materials and methods. The object of the study is the soil cover of the city of Gus-Khrustalny, widely known for the products that are produced at its enterprises. The city-forming industry, the mention of which begins in the second half of the 18th century, is the production of glass and crystal.
Results. The presence of polyelement pollution of the soil cover of the city was established, which is probably associated with the specifics and duration of the functioning of the glass industry. The priority pollutants of urban soil are primarily those belonging to the first hazard class, Zn, Pb, and As. The maximum levels of pollution were recorded in the industrial urbanozems, the minimum – in the landscape and recreational zone. An extremely dangerous chemical contamination of the soil in terms of the total indicator was revealed on the territory of the currently non-functioning part of the glass plant, which in fact is a local technogenic lithogeochemical anomaly. An assessment of the level of chemical contamination of soils as an indicator of an adverse impact on the health of the population showed most of them to live in the zone of moderately hazardous or hazardous soil categories.
Limitations. The limitations of the study are associated with one-time sampling and a small number of reference areas, which limits the possibility of a broader interpretation of the data obtained.
Conclusion. To justify measures to reduce the risk to the environment and health of the population living here, it is necessary to manage constant environmental and hygienic monitoring of the territory. To reduce soil pollution in the city, there are required the modernization of industrial enterprises and the creation of expanded sanitary protection zones around them. It is necessary to carry out measures to detoxify contaminated soilsusing modern methods, primarily biological treatment as phytoremediation, phytorecultivation.
Compliance with ethical standards. The study does not require a biomedical ethics committee opinion.
Contribution:
Trifonova T.A. — the concept and design of the study, the final design;
Selivanov O.G. — data processing, text writing;
Martsev A.A. — material collection and data processing, statistical processing, text writing;
Kurbatov Yu.N. — laboratory research.
All authors are responsible for the integrity of all parts of the manuscript and approval of the manuscript final version.
Conflict of interest. The authors declare no conflict of interest.
Acknowledgement. The study had no sponsorship.
Received: February 14, 2023 / Accepted: June 7, 2023 / Published: July 30, 2023
Keywords
About the authors
Tatyana A. Trifonova
Lomonosov Moscow State University; Vladimir State University named after A.G. and N.G. Stoletov
Author for correspondence.
Email: noemail@neicon.ru
Russian Federation
Anton A. Martsev
Vladimir State University named after A.G. and N.G. Stoletov
Email: MartsevAA@yandex.ru
MD, PhD, ecologist of the department of biology and ecology of the Vladimir State University named after A.G. and N.G. Stoletov, Vladimir, 600000, Russian Federation.
e-mail: MartsevAA@yandex.ru
Russian FederationOleg G. Selivanov
Vladimir State University named after A.G. and N.G. Stoletov
Email: noemail@neicon.ru
Russian Federation
Yurij N. Kurbatov
Vladimir State University named after A.G. and N.G. Stoletov
Email: noemail@neicon.ru
Russian Federation
References
- Martsev A.A. The influence of environmental factors on the incidence of the Vladimir region: Diss. Vladimir; 2015. (in Russian)
- Kasimov N.S. Ecology of the City [Ekologiya goroda]. Moscow: Nauchnyy mir; 2004. (in Russian)
- Alekseenko V.A., Alekseenko A.V. Chemical Elements in Urban Soils [Khimicheskie elementy v gorodskikh pochvakh]. Moscow: Logos; 2014. (in Russian)
- Il’in V.B. Heavy metals in urban soils. Sibirskiy ekologicheskiy zhurnal. 2002; 9(3): 285–92. https://elibrary.ru/baweic (in Russian)
- Trifonova T.A., Podolets A.A., Selivanov O.G., Martsev A.A., Podolets A.A. Assessment of soil contamination of recreational areas of an industrial city with compounds of heavy metals and arsenic. Teoreticheskaya i prikladnaya ekologiya. 2018; (2): 94–101. https://doi.org/10.25750/1995-4301-2018-2-094-101/1 https://elibrary.ru/xtciqh (in Russian)
- Trifonova T.A., Martsev A.A., Selivanov O.G. Gas-air emissions of glass production as a risk factor for public health. Teoreticheskaya i prikladnaya ekologiya. 2020; (4): 155–61. https://doi.org/10.25750/1995-4301-2020-4-155-161 https://elibrary.ru/qzaiof (in Russian)
- Shartova N.V., Enkh-amgalan S., Malkhazova S.M. Public health of urbanized territories of the republic of Buryatia and Mongolia. Geografiya i prirodnye resursy. 2019; (S5): 192–6. https://doi.org/10.21782/GIPR0206-1619-2019-5(192-196) https://elibrary.ru/laplnb (in Russian)
- Shaykhlislamova E.R., Valeeva E.T., Shastin A.S., Malykh O.L., Gazimova V.G., Tsepilova T.M. Morbidity of the adult working age population in the republic of Bashkortostan between 2015 and 2020. Meditsina truda i ekologiya cheloveka. 2022; (2): 141–65. https://doi.org/10.24412/2411-3794-2022-10211 https://elibrary.ru/dhhaim (in Russian)
- Official website of the municipality of the city of Gus-Khrustalny, Vladimir Region; 2023. Available at: http://gusadmin.ru
- Komarov V.I., Selivanov O.G., Martsev A.A., Podolets A.A., Luk’yanov S.N. Heavy metals contamination in arable horizon of soils of agricultural appointment of the Vladimir region. Agrokhimiya. 2019; (12): 75–82. https://doi.org/10.1134/S0002188119100089 https://elibrary.ru/eldgxk (in Russian)
- Martsev A.A., Selivanov O.G. Evaluation of soils of the roadside area of the federal highway section by the content of heavy metals, arsenic and fluoride ions. Gigiena i Sanitaria (Hygiene and Sanitation, Russian journal). 2022; 101(3): 275–80. https://doi.org/10.47470/0016-9900-2022-101-3-275-280 https://elibrary.ru/eldgxk (in Russian)
- Vodyanitskiy Yu.N. Assessment of local geochemical features and weather conditions at the regulation of heavy metals in soils. Agrokhimiya. 2014; (2): 66–72. https://elibrary.ru/rybiqd (in Russian)
- Kabata-Pendias A., Pendias H. Trace Elements in Soils and Plants. Boca Raton: CRC Press; 1986.
- Vodyanitskiy Yu.N. The evaluation of total toxicological contamination of soils with heavy metals and metalloids. Agrokhimiya. 2017; (2): 56–63. https://elibrary.ru/yfsksj (in Russian)
- Vodyanitskiy Yu.N. Standards for the content of heavy metals and metalloids in soils. Pochvovedenie. 2012; (3): 368–75. https://doi.org/10.1134/S1064229312030131 https://elibrary.ru/oweqwv (in Russian)
- Manceau A., Marcus M.A., Tamura N., Prous O., Geoffroy N., Lanson B. Natural speciation of Zn at the micrometer scale in a clay soil using X-ray fluorescence, absorption, and diffraction. Geochim. Cosmochim. Acta. 2004; 68(11): 2467–83. https://doi.org/10.1016/S0016-7037(03)00883-4
- Wang Q., Dong Y., Cui Y., Liu X. Instances of soil and crop heavy metals contamination in China. Soil Sediment. Contam. 2001; (10): 497–510. https://doi.org/10.1080/20015891109392
- Vodyanitskiy Yu.N. On dangerous heavy metals/metalloids in soils. Byulleten’ Pochvennogo instituta im. V.V. Dokuchaeva. 2011; (68): 56–82. https://doi.org/10.19047/0136-1694-2011-68-56-82 https://elibrary.ru/ojqhsf (in Russian)
- Plekhanova I.O. Self-purification of sandy loamy soddy-podzolic soils with polyelement pollution as a result of the use of sewage sludge. In: Modern Problems of Soil Pollution. Materials of the II International Conference [Sovremennye problemy zagryazneniya pochv. Materialy II Mezhdunarodnoy konferentsii]. Moscow; 2007: 198–202. (in Russian)
- Ponizovskiy A.A., Mironenko E.V. Mechanisms of absorption of lead (II) by soils. Pochvovedenie. 2001; (4): 418–29. (in Russian)
- Brown G.E., Foster A.L., Ostergren J.D. Mineral surface and bioavailability of heavy metals: A molecular scale perspective. Proc. Natl. Acad. Sci. USA. 1999; 96(7): 3388–95. https://doi.org/10.1073/pnas.96.7.3388
- Bezuglova O.S., Okolelova A.A. On regulation of arsenic content in soils. Zhivye i biokosnye sistemy. 2012; (1). http://doi.org/10.18522/2308-9709-2012-1-7 https://elibrary.ru/swbesk (in Russian)
- Raven K.P., Jain A., Loeppert R.H. Arsenite and arsenate adsorption on ferrihydrite: kinetics, equilibrium, and adsorption envelopes. Environ. Sci. Technol. 1998; 32(3): 344–9. https://doi.org/10.1021/ES970421P
- Babanin V.F., Trukhin V.I., Karpachevskiy L.O. Soil Magnetism [Magnetizm pochv]. Moscow: Yaroslavl’; 1995. (in Russian)
- Kudryavtseva G.P. Ferrimagnetism of natural oxides [Ferrimagnetizm prirodnykh oksidov]. Moscow: Nedra. 1988. (in Russian)
- Okina O.I. Influence of technogenic pollution of the environment on the microelement composition of human biosubstrates (on the example of the cities of Gus-Khrustalny, Vladimir Region and Podolsk, Moscow Region): Diss. Mosсow; 2011. (in Russian)
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