Tytuł artykułu
Treść / Zawartość
Pełne teksty:
Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
The interdependence between air quality, human health and the state of the environment has prompted the development of research on causes, control and improvement of existing pollutants in the air. This paper addresses the problem of air pollution by PM2.5 and PM10 in particulate matter. There was draws attention to solutions to protect air against existing PM2.5 and PM10. Measurements of PM2.5 and PM10 concentrations in selected twenty control points on the campus of the Białystok University of Technology were discussed and analysed. On the basis of the obtained results, an assessment of the air quality in the area in question was performed. Slight hourly fluctuations in the concentration of particulate matter in the air were observed, higher in the morning and evening hours. On 15 March and 16 March, daily exceedances of the permissible PM10 and PM2.5 concentrations were recorded at both the Białystok University of Technology campus and the air quality monitoring stations in Białystok. Comparing the influence of meteorological conditions on PM10 and PM2.5 concentrations, faint correlations were found for temperature and wind speed. As temperature increased, particulate matter concentrations decreased. Low wind velocities corresponded with exceedances of the permissible daily concentrations of PM10 and PM2.5 in the air.
Słowa kluczowe
Wydawca
Rocznik
Tom
Strony
226--235
Opis fizyczny
Bibliogr. 27 poz., fig., tab.
Twórcy
autor
- Politechnika Białostocka
autor
- Department of Environmental Engineering, Dokuz Eylul University
autor
- Department of Environmental Engineering, Dokuz Eylul University
autor
- Department of Environmental Engineering, Dokuz Eylul University
autor
- WhiteMoose, ul. Elewatorska 11/1, 15-620 Białystok, Poland
Bibliografia
- 1. Zhang R., Wang G., Guo S., Zamora M.L., Ying Qi, Lin Y., Wang W., Hu M., Wang Y. Formation of Urban Fine Particulate Matter, Chemical Reviews 2015; 115(10): 3803–3855.
- 2. Imane, S., Oumaima, B., Kenza, K. Idrissi L., El Merabet Y., Souhaili Zi. El Jarmouni M. A Review on Climate, Air Pollution, and Health in North Africa. Current Environmental Health Reports 2022 9: 276–298.
- 3. Borowski, G., Malec, A. Dust hazards and atmospheric air monitoring, Ecological Engineering 2016, 50: 161–170. [in Polish] 4. Wierzbińska M., Kozak J. PM10 Concentration Levels in the Żywiec Basin vs. Variable Air Temperatures and Thermal Inversion, Journal of Ecological Engineering 2023, 24(3): 47-54.
- 5. Raza W., Saeed S., Saulat H., Gul H., Sarfraz M., Sonne Ch.,. Sohn Z.-H, Brown R. J.C., Kim K.-H., A review on the deteriorating situation of smog and its preventive measures in Pakistan, Journal of Cleaner Production 2021, 279: 123676.
- 6. Wielgosiński, G.; Czerwińska, J. Smog Episodes in Poland. Atmosphere 2020, 11: 277.
- 7. Kolasa-Więcek, A., Suszanowicz, D. Air pollution in European countries and life expectancy—modelling with the use of neural network, Air Qual Atmos Health 2019, 12: 1335–1345.
- 8. Cichowicz, R.; Dobrzański, M. 3D Spatial Analysis of Particulate Matter (PM10, PM2.5 and PM1.0) and Gaseous Pollutants (H2S, SO2 and VOC) in Urban Areas Surrounding a Large Heat and Power Plant. Energies 2021, 14: 4070.
- 9. Czerwińska J., Wielgosiński G. The effect of selected meteorological factors on the process of “Polish smog” formation. Journal of Ecological ngineering 2020, 21(1): 180-187.
- 10. Czerwińska J., Wielgosiński G. Szymańska O. Is the Polish Smog a New Type of Smog?, Ecological Chemistry and Engineering 2019, 26(3): 465-474.
- 11. Łabij-Reduta B., Borawski J., Naumnik B. Uwaga! Smog!. Via Medica 2019, 3(1): 68-76. [in Polish]
- 12. Pichór W., Szołdra P., Jasionowska P., Zawada K., Stępień P. Efficiency of photocatalytic NOx decom- position by TioCem® cement composites in various environmental conditions. AGH University of Science and Technology, Construction-Technology- Architecture, 64-69. [in Polish]
- 13. Wierzbińska M., Szczepaniak R. The influence of meteorological conditions on the immission of particulate matter and the shape of chimney streaks in the heating season, Polish Journal of Materials and Environmental Engineering 2021, 1(21): 26–37.
- 14. Shu M., Ji X., Wang Y., Dou Y., Zhou p., Xu Z., Guo L., Dan M., Ding D, Hu Y. Characterization and source apportionment of PM in Handan – A case study during the COVID-19, Atmosphere, 2023, 14: 680.
- 15. Kuchnik M., Milewski P. Air pollution in Poland – state, causes and effects. PAN 2018, Warsaw. [in Polish]
- 16. Badura M., Sówka I., Batog P., Szymański P., Air quality measurements on the campus of Wrocław University of Science and Technology using a sensor network. Gas, Water and Sanitary Technology 2023, 2: 21-25. [in Polish]
- 17. Kołodziej A., Łojewska J. Structural catalytic reactors in the protection of the atmosphere: environmental engineering. Publishing House of the Opole University of Technology 2016, Opole. [in Polish]
- 18. Szczotko M., Orych I., Mąka Ł., Solecka J. Evaluation of the effectiveness of various types of air purification devices in reducing bacteria and fungi in indoor air in real conditions. Instal, 2023, (1): 18-26. [in Polish]
- 19. Szatyłowicz E., Siemiończyk E. Technologies used to purify the air of suspended dust in local particulate elimination devices. Environmental Sciences Proceedings 2022, 18: 20.
- 20. Diodiu I. L., Dragomir D. A., Matei A., Herbei R.C. Use of Solar Energy in Power Equipment. Journal of the Polish Mineral Engineering Society 2020, 2(1): 29-32.
- 21. https://polska.e-mapa.net/ [akcess: 10.04.2023] 22. Wierzbińska M., Adamus A. Influence of the type of fuel and heating device on the quality of atmospheric air. Ecological Engineering 2020, 21(1): 17-25. [in Polish]
- 23. Komorowska A., Mirowski T. The effects of replacing classless <<50 KW boilers with new generation solid fuel boilers. Energy-Ecology-Ethics 2016, 1: 17-25. [in Polish]
- 24. Michałkiewicz M. Formation, transfer and harm- fulness of bioaerosols emitted to the atmospheric air, Environmental Protection 2018, 40(4): 21-30. [in Polish]
- 25. Jędraszko S., Matusiak M., Mazurek M. Modeling the spread of dangerous PM2.5 and PM10 pollutants in the air generated during forest fires. Mechaniak 2015, 10. [in Polish]
- 26. Zaluska M. Concentration of particulate matter and atmospheric air temperature - analysis of depen- dence. Aura 2020, 11: 8-10. [in Polish]
- 27. Rawicki K. Thermal conditions and the concentration of particulate matter suspended in the atmospheric air in winter in selected Polish cities, Technical Issues 2016, 1: 59-65. [in Polish
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-333233a4-96a2-4a32-8112-77c6452e5ffd