Assessment of atmospheric air quality considering the stochastic nature of pollutant concentrations

  • S. Y. Adamenko Ivano-Frankivsk National Technical University of Oil and Gas, 15, Karpatska Str., Ivano-Frankivsk, 76019, Ukraine https://orcid.org/0009-0008-1678-0036
  • L M. Arkhypova Ivano-Frankivsk National Technical University of Oil and Gas, 15, Karpatska Str., Ivano-Frankivsk, 76019, Ukraine https://orcid.org/0000-0002-8725-6943
Keywords: ambient air, atmospheric pollution index, pollutants, element concentrations, guaranteed quality

Abstract

Purpose. Analysis of the state of atmospheric air, determination of the main factors of pollution formation and substantiation of the methodology for assessing guaranteed air quality, taking into account the random nature of pollutant concentrations.

Methods. Statistical and calculation of the integrated atmospheric pollution index (API).

Results. The research was conducted based on data from the Eco-City public monitoring station No. 1162 in the area of the Faculty of Chemistry of Uzhhorod National University, taking into account the climatic and orographic features of the territory. It was established that the main source of atmospheric air pollution is motor vehicles. A pronounced seasonality of changes in pollutant concentrations was revealed. Formaldehyde was determined to be the main factor in exceeding the air pollution indices, while the KIZA values often corresponded to the level of “very high” pollution. The most critical indicators were recorded: for formaldehyde – throughout the year with maximum values in January and July; for fine dust PM2.5 and PM10 – in the winter period due to the influence of the heating season and unfavorable dispersion conditions; for nitrogen dioxide – in April, which is associated with transport load. The assessment of atmospheric air quality showed a systematic exceedance of the standards for formaldehyde throughout the year.

Conclusions. The results of the study indicate a tense environmental state of the atmospheric air in the study area and the need to strengthen control over pollutant emissions. Priority measures include optimizing transport flows, reducing emissions during the heating season, and improving local atmospheric air monitoring systems, especially regarding the control of formaldehyde sources.

Downloads

Download data is not yet available.

Author Biographies

S. Y. Adamenko, Ivano-Frankivsk National Technical University of Oil and Gas, 15, Karpatska Str., Ivano-Frankivsk, 76019, Ukraine

PhD Student of the Department of Ecology

L M. Arkhypova, Ivano-Frankivsk National Technical University of Oil and Gas, 15, Karpatska Str., Ivano-Frankivsk, 76019, Ukraine

DSc (Technical), Professor of the Department of Ecology

                  

 

References

WHO global air quality guidelines: Particulate matter (PM2.5 and PM10), ozone, nitrogen dioxide, sulfur dioxide and carbon monoxide. (2021). World Health Organization. Retrieved from https://www.who.int/publications/i/item/9789240034228?utm_source=chatgpt.com

Bashtannik, M. P., Zhemera, N. S., Kiptenko, Ye. M., & Kozlenko, T. V. (2024). State of atmospheric air pollution over the territory of Ukraine. Scientific Works of UkrSRIHM, 266, 70–93. Retrieved from https://old.uhmi.org.ua/pub/np/266/Bashtannik_Zhemera_Kiptenko_Kozlenko_266.pdf

Reform of air quality monitoring and management. (2019). Ministry of Environmental Protection and Natural Resources of Ukraine. Retrieved from https://mepr.gov.ua/diyalnist/reformy/kompleksnyj-monitoryng-dovkillya/

Adamenko, S. Y., Arkhypova, L. M., Adamenko, Y. O., Moskaliuk, N. M., Hlibovytska, N. I., & Chupa, V. M. (2024). Patterns of PM10 particles change in the atmospheric air of Ivano-Frankivsk city. IOP Conference Series: Earth and Environmental Science, 1415(1), 012002. https://doi.org/10.1088/1755-1315/1415/1/012002

Di, Q., Wang, Y., Zanobetti, A., Wang, Y., Koutrakis, P., Choirat, C., Dominici, F., & Schwartz, J. D. (2020). Air pollution and mortality in the Medicare population. New England Journal of Medicine, 376(26), 2513–2522. https://doi.org/10.1056/NEJMoa1702747

Global Burden of Disease Study (GBD): Air pollution. University of Washington. (2024). Institute for Health Metrics and Evaluation. Retrieved from https://www.healthdata.org/research-analysis/health-topics/air-pollution?utm_source=chatgpt.com

Brauer, M., et al. (2024). Global burden and strength of evidence for 88 risk factors in 204 countries and territories, 1990–2021. The Lancet. https://doi.org/10.1016/S0140-6736(24)00933-4

Wu, Y., Wang, M., Lu, K., Zhang, Y., & Zhang, Y. (2023). Production and loss of atmospheric formalde-hyde at a suburban site in northern China. Atmospheric Chemistry and Physics, 23, 2997–3015. https://doi.org/10.5194/acp-23-2997-2023

Liu, S.-Q., Ma, H.-N., Tang, M.-X., Shao, Y.-M., Yao, T.-T., He, L.-Y., & Huang, X.-F. (2025). Decoding the primacy of transportation emissions of formaldehyde pollution in an urban atmosphere. Toxics, 13(8), 643. https://doi.org/10.3390/toxics13080643

Manzueta, R., Kumar, P., Ariño, A. H., & Martín-Gómez, C. (2024). Strategies to reduce air pollution emissions from urban residential buildings. Science of the Total Environment, 947, 175809. https://doi.org/10.1016/j.scitotenv.2024.175809

On the Basic Principles (Strategy) of the State Environmental Policy of Ukraine for the Period up to 2030 (Law of Ukraine No. 2697-VIII). (2019). Verkhovna Rada of Ukraine.

On Atmospheric Air Protection (Law of Ukraine No. 2707-XII). (1992). Verkhovna Rada of Ukraine. Retrieved from https://zakon.rada.gov.ua/laws/show/2707-12#Text

Arkhypova, L. M., Adamenko, S. Y., Adamenko, Y. O., Kachala, T. B., & Kachala, S. V. (2025). Model-ing the dependence of ambient air pollution on meteorological factors: A case study from Ukraine. Journal of Physics: Conference Series, 3153(1), 012021. https://doi.org/10.1088/1742-6596/3153/1/012021

Bernacki J., Scherer R. (2025). A Comprehensive Review of Data-Driven Techniques for Air Pollution Concentration Forecasting. Sensors (Basel), 25(19),6044. https://doi.org/10.3390/s25196044

Koltsov, M., & Shevchenko, L. (2020). Air quality monitoring: Ukrainian and international experi-ence: Analytical report. Open Society Foundation. Retrieved from https://osf.org.ua/data/blog_dwnl/Analitichna_zapiska_atmosferne_povitrya.pdf

Soroka, M. L. (Ed.). (2022). Radiation and Smog Alarm: Guidelines and principles for informing the public about air quality, radiation, and chemical hazards. Arnika. Retrieved from https://cleanair.org.ua/wp-content/uploads/2023/01/cleanair.org.ua-uaqi-radiation-and-smog-alarm-presentation-soroka.pdf

Klymchuk, I., & Arkhypova, L. (2023). Research on climate change in the Carpathian Region: Conse-quences and challenges for ski resorts. Ecological Safety and Balanced Use of Resources, 14(1), 66–74. https://doi.org/10.69628/esbur/2.2023.19

Matviichuk, V. K., Chuhaienko, Yu. O., & Savenkov, O. I. (2023). Environmental policy in the system of public administration of the national economy. National Academy of Management. Retrieved from https://nam.kyiv.ua/files/publications/978-966-8406-83-6-monog.pdf

Some issues of state monitoring in the field of atmospheric air protection (Resolution No. 827). (2019). Cabinet of Ministers of Ukraine. https://zakon.rada.gov.ua/laws/show/827-2019-%D0%BF#Text

Nekos, A. N., & Kravchenko, O. K. (2012). Assessment of the state and dynamics of atmospheric air pollution in small towns of Kharkiv region. Man and Environment. Issues of Neoecology, (1-2), 122–127. Retrieved from http://luddovk.univer.kharkov.ua/sites/default/files/Papers/19-12-17.pdf

Falko V. Assessment of guaranteed air quality for plants (case of the park named after T. Shevchenko in Dnipro). Environmental Sciences, 6(45), 153-157. Retrieved from https://ecoj.dea.kiev.ua/archives/2022/6/24.pdf

Rybalova, O. V., Bielan, S. V., & Artemiev, S. R. (2023). Determination of the environmental risk of atmospheric air quality deterioration considering the chemical hazard of Ukrainian regions. Problems of Emergency Situations, 18, 196–209. Retrieved from http://nbuv.gov.ua/UJRN/Pns_2013_18_25

Published
2026-05-30
How to Cite
Adamenko, S. Y., & Arkhypova, L. M. (2026). Assessment of atmospheric air quality considering the stochastic nature of pollutant concentrations. Visnyk of V. N. Karazin Kharkiv National University. Series Еcоlogy, (34), 42-53. https://doi.org/10.26565/1992-4259-2026-34-03