Zitieren

Nazar W, Niedoszytko M. Changes in air-pollution-related information-seeking behaviour during the COVID-19 pandemic in Poland. Int J Environ Res Publ Health. 2022;19:5613. DOI: 10.3390/ijerph19095613. Search in Google Scholar

Roomi TO, Abed AS. Estimating gaseous pollutants in the air near Daura Refinery, Daura Power Plant and South of Baghdad Power Plant by calculating the fuel discharge. Sci Rev Eng Env Sci. 2021;30:195-207. DOI: 10.22630/PNIKS.2021.30.1.17. Search in Google Scholar

Schauer JJ, Kleeman MJ, Cass GR, Simoneit BRT. Measurement of emissions from air pollution sources. 5. C1-C32 organic compounds from gasoline-powered motor vehicles. Environ Sci Technol. 2002;36:1169-80. DOI: 10.1021/es0108077. Search in Google Scholar

Stojić N, Štrbac S, Ćurčić L, Pucarević M, Prokić D, Stepanov J, et al. Exploring the impact of transportation on heavy metal pollution: A comparative study of trains and cars. Transport Res D-Tr E. 2023;125:103966. DOI: 10.1016/j.trd.2023.103966. Search in Google Scholar

Kumar V, Gupta S, Jolli V. Influence of vehicular frequency on air quality of Delhi, India. Ecol Chem Eng S. 2022;29:477-85. DOI: 10.2478/eces-2022-0034. Search in Google Scholar

Colvile RN, Hutchinson EJ, Mindell JS, Warren RF. The transport sector as a source of air pollution. Atmos Environ. 2001;35:1537-65. DOI: 10.1016/S1352-2310(00)00551-3. Search in Google Scholar

Bai X, Chen H, Oliver BG. The health effects of traffic-related air pollution: A review focused the health effects of going green. Chemosphere. 2022;289:133082. DOI: 10.1016/j.chemosphere.2021.133082. Search in Google Scholar

European Environment Agency. Environmental statement 2022. LU: Publications Office; 2023. DOI: 10.2800/351036. Search in Google Scholar

Cichowicz R, Wielgosiński G. Analysis of variations in air pollution fields in selected cities in Poland and Germany. Ecol Chem Eng S. 2018;25:217-27. DOI: 10.1515/eces-2018-0014. Search in Google Scholar

Świetlik R, Trojanowska M, Strzelecka M, Bocho-Janiszewska A. Fractionation and mobility of Cu, Fe, Mn, Pb and Zn in the road dust retained on noise barriers along expressway - A potential tool for determining the effects of driving conditions on speciation of emitted particulate metals. Environ Pollut. 2015;196:404-13. DOI: 10.1016/j.envpol.2014.10.018. Search in Google Scholar

Świetlik R, Strzelecka M, Trojanowska M. Evaluation of traffic-related heavy metals emissions using noise barrier road dust analysis. Pol J Environ Stud. 2013;22:561-7. Available from: http://www.pjoes.com/Evaluation-of-Traffic-Related-Heavy-Metals-r-nEmissions-Using-Noise-Barrier-Road,89010,0,2.html. Search in Google Scholar

Pal SK, Roy R. Evaluating heavy metals emission’ pattern on road influenced by urban road layout. Transp Res Interdiscip Perspec. 2021;10:100362. DOI: 10.1016/j.trip.2021.100362. Search in Google Scholar

Werkenthin M, Kluge B, Wessolek G. Metals in European roadside soils and soil solution - A review. Environ Pollut. 2014;189:98-110. DOI: 10.1016/j.envpol.2014.02.025. Search in Google Scholar

Penkała M, Ogrodnik P, Rogula-Kozłowska W. Particulate matter from the road surface abrasion as a problem of non-exhaust emission control. Environments. 2018;5:9. DOI: 10.3390/environments5010009. Search in Google Scholar

Skorbiłowicz M, Skorbiłowicz E, Rogowska W. Heavy metal concentrations in roadside soils on the Białystok-Budzisko route in northeastern Poland. Minerals. 2021;11:1290. DOI: 10.3390/min11111290. Search in Google Scholar

Alves CA, Evtyugina M, Vicente AMP, Vicente ED, Nunes TV, Silva PMA, et al. Chemical profiling of PM10 from urban road dust. Sci Total Environ. 2018;634:41-51. DOI: 10.1016/j.scitotenv.2018.03.338. Search in Google Scholar

Rogula-Kozłowska W, Kozielska B, Majewski G, Rogula-Kopiec P, Mucha W, Kociszewska K. Submicron particle-bound polycyclic aromatic hydrocarbons in the Polish teaching rooms: Concentrations, origin and health hazard. J Environ Sci. 2018;64:235-44. DOI: 10.1016/j.jes.2017.06.022. Search in Google Scholar

Enroth J, Saarikoski S, Niemi J, Kousa A, Ježek I, Močnik G, et al. Chemical and physical characterization of traffic particles in four different highway environments in the Helsinki metropolitan area. Atmos Chem Phys. 2016;16:5497-512. DOI: 10.5194/acp-16-5497-2016. Search in Google Scholar

Kozielska B, Rogula-Kozłowska W, Klejnowski K. Seasonal variations in health hazards from polycyclic aromatic hydrocarbons bound to submicrometer particles at three characteristic sites in the heavily polluted Polish region. Atmosphere. 2014;6:1-20. DOI: 10.3390/atmos6010001. Search in Google Scholar

Pant P, Shi Z, Pope FD, Harrison RM. Characterization of traffic-related particulate matter emissions in a road tunnel in Birmingham, UK: Trace metals and organic molecular markers. Aerosol Air Qual Res. 2017;17:117-30. DOI: 10.4209/aaqr.2016.01.0040. Search in Google Scholar

Dmochowska A, Majder-Lopatka M, Salamonowicz Z, Piechota-Polanczyk A, Polanczyk A. Heavy metal emissions from linear sources and polluted soil in the capital city of Poland. Rocz Ochr Śr. 2021;23:94-105. DOI: 10.54740/ros.2021.006. Search in Google Scholar

Budai P, Clement A. Refinement of national-scale heavy metal load estimations in road runoff based on field measurements. Transport Res D-Tr E. 2011;16:244-50. DOI: 10.1016/j.trd.2010.12.003. Search in Google Scholar

Han Q, Wang M, Xu X, Li M, Liu Y, Zhang C, et al. Health risk assessment of heavy metals in road dust from the fourth-tier industrial city in central China based on Monte Carlo simulation and bioaccessibility. Ecotoxicol Environ Saf. 2023;252:114627. DOI: 10.1016/j.ecoenv.2023.114627. Search in Google Scholar

Naimabadi A, Gholami A, Ramezani AM. Determination of heavy metals and health risk assessment in indoor dust from different functional areas in Neyshabur, Iran. Indoor Built Environ. 2021;30:1781-95. DOI: 10.1177/1420326X20963378. Search in Google Scholar

Zhao N, Lu X, Chao S, Xu X. Multivariate statistical analysis of heavy metals in less than 100 μm particles of street dust from Xining, China. Environ Earth Sci. 2015;73:2319-27. DOI: 10.1007/s12665-014-3578-x. Search in Google Scholar

Zgłobicki W, Telecka M, Skupiński S, Pasierbińska A, Kozieł M. Assessment of heavy metal contamination levels of street dust in the city of Lublin, E Poland. Environ Earth Sci. 2018;77:774. DOI: 10.1007/s12665-018-7969-2. Search in Google Scholar

European Commission. Joint Research Centre. Institute for Energy and Transport. Non-exhaust traffic related emissions - Brake and tyre wear PM: literature review. LU: Publications Office; 2014. DOI: 10.2790/21481. Search in Google Scholar

Grigoratos T, Martini G. Brake wear particle emissions: a review. Environ Sci Pollut Res. 2015;22:2491-504. DOI: 10.1007/s11356-014-3696-8. Search in Google Scholar

Penkała M, Rogula-Kozłowska W, Ogrodnik P, Bihałowicz JS, Iwanicka N. Exploring the relationship between particulate matter emission and the construction material of road surface: Case study of highways and motorways in Poland. Materials. 2023;16:1200. DOI: 10.3390/ma16031200. Search in Google Scholar

Kumar P, Pirjola L, Ketzel M, Harrison RM. Nanoparticle emissions from 11 non-vehicle exhaust sources -A review. Atmos Environ. 2013;67:252-77. DOI: 10.1016/j.atmosenv.2012.11.011. Search in Google Scholar

Manisalidis I, Stavropoulou E, Stavropoulos A, Bezirtzoglou E. Environmental and health impacts of air pollution: A review. Front Public Health. 2020;8:14. DOI: 10.3389/fpubh.2020.00014. Search in Google Scholar

Suriya W, Chunpang P, Laosuwan T. Patterns of relationship between PM10 from air monitoring quality station and AOT data from MODIS sensor onboard of Terra satellite. Sci Rev Eng Env Sci. 2021;30:236-49. DOI: 10.22630/PNIKS.2021.30.2.20. Search in Google Scholar

Bhatnagar A. Cardiovascular effects of particulate air pollution. Ann Rev Med. 2022;73:393-406. DOI: 10.1146/annurev-med-042220-011549. Search in Google Scholar

Czubaj-Kowal M, Kurzawa R, Mazurek H, Sokołowski M, Friediger T, Polak M, et al. Relationship between air pollution and the concentration of nitric oxide in the exhaled air (FeNO) in 8-9-year-old school children in Krakow. Int J Environ Res Publ Health. 2021;18:6690. DOI: 10.3390/ijerph18136690. Search in Google Scholar

Eze IC, Schaffner E, Fischer E, Schikowski T, Adam M, Imboden M, et al. Long-term air pollution exposure and diabetes in a population-based Swiss cohort. Environ Int. 2014;70:95-105. DOI: 10.1016/j.envint.2014.05.014. Search in Google Scholar

Mauser, W Klepper G, Rice M, Schmalzbauer B, Hackmann H, Leemans R, et al. Transdisciplinary global change research: the co-creation of knowledge for sustainability. Curr Opin Environ Sustain. 2013;5:420-31. DOI: 10.1016/j.cosust.2013.07.001. Search in Google Scholar

Kelishadi R, Poursafa P. Air pollution and non-respiratory health hazards for children. Arch Med Sci. 2010;4:483-95. DOI: 10.5114/aoms.2010.14458. Search in Google Scholar

Nazar W, Niedoszytko M. Air pollution in Poland: A 2022 narrative review with focus on respiratory diseases. Int J Environ Res Publ Health. 2022;19(2):895. DOI: 10.3390/ijerph19020895. Search in Google Scholar

Anioł E, Szląg B, Kula D, Ignar S. The impact of air quality and meteorological conditions including visibility on tourism: The case of Zakopane (Poland). Sci Rep Fire Univ (ZN SGSP). 2022;84:31-53. DOI: 10.5604/01.3001.0016.1800. Search in Google Scholar

Filak M, Hoffman S. Study of trends in concentrations of basic air pollutants in the Malopolska Province. Ecol Chem Eng S. 2020;27:567-78. DOI: 10.2478/eces-2020-0035. Search in Google Scholar

Jiang XQ, Mei XD, Feng D. Air pollution and chronic airway diseases: what should people know and do? J Thorac Dis. 2016;8:E31-40. DOI: 10.3978/j.issn.2072-1439.2015.11.50. Search in Google Scholar

Mach T, Bihałowicz JS. How to effectively analyse the impact of air quality on society - Review of modern measurement techniques and apparatus: Particulates. Sci Rep Fire Univ (ZN SGSP). 2022;84:55-71. DOI: 10.5604/01.3001.0016.1801. Search in Google Scholar

Penkała M, Ogrodnik P, Rogula-Kozłowska W. Silica dust as an additive in concrete with proven impact on human health. Pol J Environ Stud. 2019;28:4057-71. DOI: 10.15244/pjoes/99241. Search in Google Scholar

Means B. Risk-assessment guidance for Superfund. Volume 1. Human Health Evaluation Manual. Part A. Interim Report (Final) 1989. Available from: https://www.osti.gov/biblio/7037757. Search in Google Scholar

Zhang S, Han Y, Peng J, Chen Y, Zhan L, Li J. Human health risk assessment for contaminated sites: A retrospective review. Environ Int. 2023;171:107700. DOI: 10.1016/j.envint.2022.107700. Search in Google Scholar

GDDKiA. General Traffic Measurement (GPR) 2020/2021 2021. Available from: https://www.gov.pl/web/gddkia/generalny-pomiar-ruchu-20202021. Search in Google Scholar

Chang SS. Implementing probabilistic risk assessment in USEPA Superfund Program. Human Ecol Risk Assess: Int J. 1999;5:737-54. DOI: 10.1080/10807039.1999.9657738. Search in Google Scholar

Liu Y, Jin T, Yu S, Chu H. Pollution characteristics and health risks of heavy metals in road dust in Ma’anshan, China. Environ Sci Pollut Res. 2023;30:43726-39. DOI: 10.1007/s11356-023-25303-2. Search in Google Scholar

Ferreira-Baptista L, De Miguel E. Geochemistry and risk assessment of street dust in Luanda, Angola: A tropical urban environment. Atmos Environ. 2005;39:4501-12. DOI: 10.1016/j.atmosenv.2005.03.026. Search in Google Scholar

Heidari M, Darijani T, Alipour V. Heavy metal pollution of road dust in a city and its highly polluted suburb; quantitative source apportionment and source-specific ecological and health risk assessment. Chemosphere. 2021;273:129656. DOI: 10.1016/j.chemosphere.2021.129656. Search in Google Scholar

Bhat T, Dolislager F, Stewart D, Manning K, Noto K, Galloway L, et al. An Overview of the Risk Assessment Information System. 2023. DOI: 10.2172/1997691. Search in Google Scholar

Zheng N, Liu J, Wang Q, Liang Z. Health risk assessment of heavy metal exposure to street dust in the zinc smelting district, Northeast of China. Sci Total Environ. 2010;408:726-33. DOI: 10.1016/j.scitotenv.2009.10.075. Search in Google Scholar

Van den Berg R. Human exposure to soil contamination: a qualitative and quantitative analysis towards proposals for human toxicological intervention values. 1995: RIVM Report No. 725201011. National Institute of Public Health and Environmental Protection (RIVM). Available from: https://www.rivm.nl/bibliotheek/rapporten/725201011.pdf. Search in Google Scholar

Zhang J, Wu L, Zhang Y, Li F, Fang X, Mao H. Elemental composition and risk assessment of heavy metals in the PM10 fractions of road dust and roadside soil. Particuology. 2019;44:146-52. DOI: 10.1016/j.partic.2018.09.003. Search in Google Scholar

Li H, Qian X, Hu W, Wang Y, Gao H. Chemical speciation and human health risk of trace metals in urban street dusts from a metropolitan city, Nanjing, SE China. Sci Total Environ. 2013;456-457:212-21. DOI: 10.1016/j.scitotenv.2013.03.094. Search in Google Scholar

Kolakkandi V, Sharma B, Rana A, Dey S, Rawat P, Sarkar S. Spatially resolved distribution, sources and health risks of heavy metals in size-fractionated road dust from 57 sites across megacity Kolkata, India. Sci Total Environ. 2020;705:135805. DOI: 10.1016/j.scitotenv.2019.135805. Search in Google Scholar

Li Z, Ma Z, Van Der Kuijp TJ, Yuan Z, Huang L. A review of soil heavy metal pollution from mines in China: Pollution and health risk assessment. Sci Total Environ. 2014;468-469:843-53. DOI: 10.1016/j.scitotenv.2013.08.090. Search in Google Scholar

Shabbaj I, Alghamdi M, Shamy M, Hassan S, Alsharif M, Khoder M. Risk assessment and implication of human exposure to road dust heavy metals in Jeddah, Saudi Arabia. Int J Environ Res Publ Health. 2017;15:36. DOI: 10.3390/ijerph15010036. Search in Google Scholar

Chwaszcz K, Dziubanek G, Rogala D. Are consumers of protein supplements available on the Polish market exposed to toxic metals? Med Og Nauk Zdr. 2020;26:54-9. DOI: 10.26444/monz/117755. Search in Google Scholar

Cai Y, Li F, Zhang J, Zhu X, Li Y, Fu J, et al. Toxic metals in size-fractionated road dust from typical industrial district: Seasonal distribution, bioaccessibility and stochastic-fuzzy health risk management. Environ Technol Innov. 2021;23:101643. DOI: 10.1016/j.eti.2021.101643. Search in Google Scholar

Safiur Rahman M, Khan MDH, Jolly YN, Kabir J, Akter S, Salam A. Assessing risk to human health for heavy metal contamination through street dust in the Southeast Asian Megacity: Dhaka, Bangladesh. Sci Total Environ. 2019;660:1610-22. DOI: 10.1016/j.scitotenv.2018.12.425. Search in Google Scholar

Li F, Qiu Z, Zhang J, Liu C, Cai Y, Xiao M. Spatial distribution and fuzzy health risk assessment of trace elements in surface water from Honghu Lake. Int J Environ Res Publ Health. 2017;14:1011. DOI: 10.3390/ijerph14091011. Search in Google Scholar

U.S. EPA. Child-Specific Exposure Factors Handbook (2008, Final Report). U.S. Environmental Protection Agency; Washington, DC: EPA/600/R-06/096F, 2008. Available from: https://cfpub.epa.gov/si/si_public_record_report.cfm?Lab=NCEA&dirEntryId=199243. Search in Google Scholar

eISSN:
2084-4506
Sprache:
Englisch
Zeitrahmen der Veröffentlichung:
2 Hefte pro Jahr
Fachgebiete der Zeitschrift:
Chemie, andere