Have a personal or library account? Click to login
Chemical characterization of PM10 in two small towns located in South Poland Cover

Chemical characterization of PM10 in two small towns located in South Poland

Open Access
|Mar 2021

References

  1. Tarín-Carrasco, P., Morales-Suárez-Varela, M., Im, U., Brandt, J., Palacios-Peña, L., & Jiménez-Guerrero, P. (2019). Isolating the climate change impacts on air-pollution-related-pathologies over central and southern Europe – A modelling approach on cases and costs. Atmos. Chem. Phys., 19, 9385–9398. https://doi.org/10.5194/acp-19-9385-2019.
  2. World Health Organization. (2005). WHO Air quality guidelines for particulate matter, ozone, nitrogen dioxide and sulfur dioxide: Global update 2005, 1–21. Available from https://doi.org/10.1016/0004-6981(88)90109-6.
  3. Querol, X., Viana, M., Alastuey, A., Amato, F., Moreno, T., Castillo, S., Pey, J., de la Rosa, J., de la Campa, A. S., Artinano, B., Salvador, P., Dos Santos, S. G., Fernandez-Patier, R., Moreno-Grau, S., Nergal, L., Minguillon, M. C., Monfort, E., Gil, J. I., Inza, A., Ortega, L. A., Santamaria, J. M., & Zabalza, J. (2007). Source origin of trace elements in PM from regional background, urban and industrial sites of Spain. Atmos. Environ., 41(34), 7219–7231. https://doi.org/10.1016/j.atmosenv.2007.05.022.
  4. Visser, S., Slowik, J. G., Furger, M., Zotter, P., Bukowiecki, N., Canonaco, F., Flechsig, U., Appel, K., Green, D. C., Tremper, A. H., Young, D. E., Williams, P. I., Allan, J. D., Coe, H., Williams, L. R., Mohr, C., Xu, L., Ng, N. L., Nemitz, E., Barlow, J. F., Halios, C. H., Fleming, Z. L., Baltensperger, U., & Prévôt, A. S. H. (2015). Advanced source apportionment of size-resolved trace elements at multiple sites in London during winter. Atmos. Chem. Phys., 15(19), 11291–11309. https://doi.org/10.5194/acp-15-11291-20115.
  5. Zieliński, E., Wielgus, A., Dreliszak, J., & Zukow, W. (2018). Air pollution – selected health effects in Poland. Journal of Education, Health and Sport, 8(12), 641–648. http://dx.doi.org/10.5281/zenodo.2527086.
  6. European Council. (2008). Directive 2008/50/EC of the European Parliament and of the Council of 21 May 2008 on ambient air quality and cleaner air for Europe. (2008/50/EC).
  7. Lin, C., Ceburnis, D., Huang, R. -J., Xu, W., Spohn, T., Martin, D., Buckley, P., Wenger, J., Hellebust, S., Rinaldi, M., Facchini, M. C., O’Dowd, C., & Ovadnevaite, J. (2019). Wintertime aerosol dominated by solid fuel burning emissions across Ireland: insight into the spatial and chemical variation of submicron aerosol. Atmos. Chem. Phys., 5, 14091–14106. https://doi.org/10.5194/acp-19-14099-2019.
  8. Vasev, N. (2017). Governing energy while neglecting health – The case of Poland. Health Policy, 121(11), 1147–1153. https://doi.org/10.1016/j.health-pol.2017.09.008.
  9. Samek, L., Zwoździak, A., & Sówka, I. (2013). Chemical characterization and source identification of particulate matter PM 10 in a rural and urban site in Poland. Environ. Prot. Eng., 39(4), 91–103. https://doi.org/10.5277/epe130408.
  10. Crilley, L. R., Lucarelli, F., Bloss, W. J., Harrison, R. M., Beddows, D. C., Calzolai, G., Nava, S., Valli, G., Bernardoni, V., & Vecchi, R. (2017). Source apportionment of fine and coarse particles at a roadside and urban background site in London during the 2012 summer ClearfLo campaign. Environ. Pollut., 220, 766–778. https://doi.org/10.1016/j.envpol.2016.06.002.
  11. Harrison, R. M., Beddows, D. C. S., Hu, L., & Yin, J. (2012). Comparison of methods for evaluation of wood smoke and estimation of UK ambient concentrations. Atmos. Chem. Phys., 12(17), 8271–8283. https://doi.org/10.5194/acp-12-8271-2012.
  12. Reizer, M., & Juda-Rezler, K. (2016). Explaining the high PM10 concentrations observed in Polish urban areas. Air Quality, Atmosphere and Health, 9(5), 517–531. https://doi.org/10.1007/s11869-015-0358-z.
  13. ALBEKO. (2012). Program ochrony środowiska dla gminy Skała na lata 2012–2015 z perspektywą na lata 2016–2019. Opole: ALBEKO.
  14. Belis, C. A., Pikridas, M., Lucarelli, F., Petralia, E., Cavalli, F., Calzolai, G., Berico, M., & Sciare, J. (2019). Source apportionment of fine PM by combining high time resolution organic and inorganic chemical composition datasets. Atmos. Environ. X, 3, 100046. https://doi.org/10.1016/j.aeaoa.2019.100046.
  15. Pant, P., & Harrison, R. M. (2013). Estimation of the contribution of road traffic emissions to particulate matter concentrations from field measurements: A review. Atmos. Environ., 77, 78–97. https://doi.org/10.1016/j.atmosenv.2013.04.028.
  16. Samek, L., Stegowski, Z., & Furman, L. (2016). Preliminary PM2.5 and PM10 fractions source apportionment complemented by statistical accuracy determination. Nukleonika, 61(1), 75–83. https://doi.org/10.1515/nuka-2016-0014.
  17. Samek, L. (2012). Source apportionment of the PM10 fraction of particulate matter collected in Kraków, Poland. Nukleonika, 57(4), 601–606.
  18. Visser, S., Slowik, J. G., Furger, M., Zotter, P., Bukowiecki, N., Dressler, R., Flechsig, U., Appel, K., Green, D. C., Tremper, A. H., Young, D. E., Williams, P. I., Allan, J. D., Herndon, S. C., Williams, L. R., Mohr, C., Xu, L., Ng, N. L., Detournay, A., Barlow, J. F., Halios, C. H., Fleming, Z. L., Baltensperger, U., & Prévôt, A. S. H. (2015). Kerb and urban increment of highly time-resolved trace elements in PM10, PM2.5 and PM1.0 winter aerosol in London during ClearfLo 2012. Atmos. Chem. Phys., 15(5), 2367–2386. https://doi.org/10.5194/acp-15-2367-2015.
DOI: https://doi.org/10.2478/nuka-2021-0004 | Journal eISSN: 1508-5791 | Journal ISSN: 0029-5922
Language: English
Page range: 29 - 34
Submitted on: Mar 12, 2020
|
Accepted on: May 20, 2020
|
Published on: Mar 6, 2021
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2021 Anna Turek-Fijak, Joanna Brania, Katarzyna Styszko, Damian Zięba, Zdzisław Stęgowski, Lucyna Samek, published by Institute of Nuclear Chemistry and Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.